{"id":213,"date":"2021-09-06T14:48:46","date_gmt":"2021-09-06T14:48:46","guid":{"rendered":"https:\/\/www.nemeslab.com\/?page_id=213"},"modified":"2026-10-06T09:28:37","modified_gmt":"2026-10-06T09:28:37","slug":"jc-archive","status":"publish","type":"page","link":"https:\/\/www.nemeslab.com\/hu\/journal-club\/jc-archive\/","title":{"rendered":"Journal Club Archive"},"content":{"rendered":"\n<figure class=\"wp-block-table alignwide is-style-stripes\"><table class=\"has-fixed-layout\"><tbody><tr><td>Zhao, M. <em>et al.<\/em> Step geometry-guided growth of rhombohedral graphene. <em>Science<\/em> <strong>393<\/strong>, 422\u2013427 (2026).<\/td><td>Maxime Le Ster<\/td><td>2026.10.08<\/td><\/tr><tr><td>Rhodes, L. C., Houston, D. C., Armitage, O. R. &amp; Wahl, P. Probing moir\u00e9 electronic structures through quasiparticle interference. <em>Phys. Rev. B.<\/em> <strong>111<\/strong>, L121403 (2025).<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2026.10.01<\/td><\/tr><tr><td>Naragon, T. H.&nbsp;<em>et al.<\/em>&nbsp;Symbiotic entrenchment through ecological Catch-22.&nbsp;<em>Cell&nbsp;<\/em><strong>189<\/strong>, 1228-1244.e24 (2026).<\/td><td>Piszter G\u00e1bor<\/td><td>2026.06.15<\/td><\/tr><tr><td>STM metrology<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2026.06.08<\/td><\/tr><tr><td>Holleis, L. <em>et al.<\/em> Cryogenic shock exfoliation for ultrahigh mobility rhombohedral graphite nanoelectronics. <em>arXiv<\/em> (2026)<\/td><td>M\u00e1rity Kriszti\u00e1n<\/td><td>2026.05.11<\/td><\/tr><tr><td>Gottlob, E., Gr\u00f6ters, D. &amp; Schneider, U. Origin of energy gaps in quasicrystalline potentials. <em>Phys. Rev. B.<\/em> <strong>113<\/strong>, 134202 (2026).<\/td><td>Maxime Le Ster<\/td><td>2026.05.04<\/td><\/tr><tr><td>Fan, WC., Guan, Z., Wei, LQ. et al. Edge polarization topology integrated with sliding ferroelectricity in Moir\u00e9 system. Nat Commun 16, 3557 (2025)<\/td><td>Kun P\u00e9ter<\/td><td>2026.04.27<\/td><\/tr><tr><td>Roy, N. <em>et al.<\/em> Detecting the six polytypes of five-layer graphite. <em>Adv. Mater.<\/em> e09947 (2025).<\/td><td>Kandrai Konr\u00e1d<\/td><td>2026.04.20<\/td><\/tr><tr><td>Shi, J. <em>et al.<\/em> Near-surface liquid water on Mars inferred from seasonal marsquakes. <em>Nat. Commun.<\/em> <strong>17<\/strong>, 1034 (2025).<\/td><td>K\u00e1lvin Gy\u00f6rgy<\/td><td>2026.04.13<\/td><\/tr><tr><td>Irschik, P. <em>et al.<\/em> Atomically clean free-standing two-dimensional materials through heating in ultra-high vacuum. <em>2d Mater.<\/em> <strong>13<\/strong>, 025001 (2026).<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2026.03.23<\/td><\/tr><tr><td>Yeo, Y. <em>et al.<\/em> Polytype switching by super-lubricant van der Waals cavity arrays. <em>Nature<\/em> <strong>638<\/strong>, 389\u2013393 (2025).<\/td><td>Balogh Andr\u00e1s<\/td><td>2026.03.16<\/td><\/tr><tr><td>de Jong, T. A. <em>et al.<\/em> Imaging moir\u00e9 deformation and dynamics in twisted bilayer graphene. <em>Nat. Commun.<\/em> <strong>13<\/strong>, 70 (2022).<\/td><td>Csan\u00e1di Rich\u00e1rd<\/td><td>2026.02.09<\/td><\/tr><tr><td>Li, S.-Y. <em>et al.<\/em> Reentrant flat bands with nontrivial topology and electronic correlations in artificial rhombohedral trilayer graphene. <em>ACS Nano<\/em> (2026) doi:10.1021\/acsnano.5c19130.<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2026.02.16<\/td><\/tr><tr><td>Jiang, C. <em>et al.<\/em> Signatures of magnetism in zigzag graphene nanoribbons embedded in a hexagonal boron nitride lattice. <em>Nat. Mater.<\/em> <strong>24<\/strong>, 1592\u20131599 (2025).<\/td><td>Tapaszt\u00f3 Levente<\/td><td>2026.02.09<\/td><\/tr><tr><td>Bennett, D., Pizzochero, M., Junquera, J. &amp; Kaxiras, E. Accurate and efficient localized basis sets for two-dimensional materials. <em>Phys. Rev. B.<\/em> <strong>111<\/strong>, 125123 (2025).<\/td><td>Tajkov Zolt\u00e1n<\/td><td>2026.02.02<\/td><\/tr><tr><td>Wei, Y., Li, S., Song, Y. &amp; He, C. Two-dimensional flat-bands in moire-diamonds. <em>arXiv<\/em> (2025) doi:10.48550\/arXiv.2510.10908.<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2026.01.26<\/td><\/tr><tr><td>Zheng, W. <em>et al.<\/em> Experimental observation of liquid-solid transition of nanoconfined water at ambient temperature. <em>Nat. Mater.<\/em> 1\u20137 (2026).<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2026.01.19<\/td><\/tr><tr><td>Wendy A. Valencia-Montoya et al., Infrared radiation is an ancient pollination signal.<br>Science 390, 1164-1170 (2025). DOI: 10.1126\/science.adz1728<\/td><td>Piszter G\u00e1bor<\/td><td>2026.01.12<\/td><\/tr><tr><td>Pack, J. <em>et al.<\/em> Sliding Disassembly of van der Waals Heterostructures. <em>arXiv<\/em> (2025) doi:10.48550\/arXiv.2510.19064.<\/td><td>Nemes-Incze Peter<\/td><td>2025.12.08<\/td><\/tr><tr><td>Mester, L., Govyadinov, A. A. &amp; Hillenbrand, R. High-fidelity nano-FTIR spectroscopy by on-pixel normalization of signal harmonics. <em>Nanophotonics<\/em> <strong>11<\/strong>, 377\u2013390 (2022).<\/td><td>M\u00e1rity Kriszt\u00e1n<\/td><td>2025.12.01<\/td><\/tr><tr><td>Bhattacharjee, S. <em>et al.<\/em> Reforming of soluble biomass and plastic derived waste using a bias\u2010free cu<sub>30<\/sub>pd<sub>70<\/sub>|perovskite|pt photoelectrochemical device. <em>Adv. Funct. Mater.<\/em> <strong>32<\/strong>, 2109313 (2022).<\/td><td>Lutter Liza<\/td><td>2025.11.24<\/td><\/tr><tr><td>Hong, C. <em>et al.<\/em> Charge transfer governed interlayer magnetic coupling and symmetry breaking in a van der Waals magnet. <em>Nat. Commun.<\/em> <strong>16<\/strong>, 9498 (2025).<\/td><td>Maxime Le Ster<\/td><td>2025.11.17<\/td><\/tr><tr><td>Zhao, J., Li, L., Li, P. et al. Realization of 2D metals at the \u00e5ngstr\u00f6m thickness limit. Nature 639, 354\u2013359 (2025).<\/td><td>Kun P\u00e9ter<\/td><td>2025.11.10<\/td><\/tr><tr><td>Wang, L. <em>et al.<\/em> Twisted bilayer Ice as a new class of hydrogen-bonding moir\u00e9 materials. <em>Nat. Commun.<\/em> <strong>16<\/strong>, 8762 (2025).<\/td><td>Kandrai Konr\u00e1d<\/td><td>2025.11.03<\/td><\/tr><tr><td>Li, T. et al. On-chip Cherenkov radiation tuning in 3.2-14 THz. Nat. Commun. 16, 7921 (2025).<\/td><td>K\u00e1lvin Gy\u00f6rgy<\/td><td>2025.10.27<\/td><\/tr><tr><td>Niu, R. <em>et al.<\/em> Correlated states in alternating twisted bilayer-monolayer-monolayer graphene. <em>Chin. Physics B<\/em> <strong>32<\/strong>, 017202 (2022).<\/td><td>Balogh Andr\u00e1s<\/td><td>2025.10.20<\/td><\/tr><tr><td>Uzan, M. <em>et al.<\/em> hBN alignment orientation controls moir\u00e9 strength in rhombohedral graphene. <em>arXiv<\/em> (2025).<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2025.10.13<\/td><\/tr><tr><td>Shi, Z. <em>et al.<\/em> Sub-2-nm-droplet-driven growth of amorphous metal chalcogenides approaching the single-layer limit. <em>Nat. Mater.<\/em> <strong>24<\/strong>, 1186\u20131194 (2025).<\/td><td>Tapaszt\u00f3 Levente<\/td><td>2025.10.06<\/td><\/tr><tr><td>C\u0103lug\u0103ru, D. <em>et al.<\/em> Moir\u00e9 materials based on M-point twisting. <em>Nature<\/em> <strong>643<\/strong>, 376\u2013381 (2025).<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2025.09.29<\/td><\/tr><tr><td>Zhao, C. <em>et al.<\/em> Spin excitations in nanographene-based antiferromagnetic spin-1\/2 Heisenberg chains. <em>Nat. Mater.<\/em> <strong>24<\/strong>, 722\u2013727 (2025).<\/td><td>Tajkov Zolt\u00e1n<\/td><td>2025.09.15<\/td><\/tr><tr><td>Zhou, H. <em>et al.<\/em> Imaging quantum oscillations and millitesla pseudomagnetic fields in graphene. <em>Nature<\/em> <strong>624<\/strong>, 275\u2013281 (2023).<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2025.06.30<\/td><\/tr><tr><td>Supple, J. A. <em>et al.<\/em> Spectral matched filtering in the butterfly visuomotor system. <em>bioRxiv<\/em> 2025.06.10.658887 (2025) <\/td><td>Piszter G\u00e1bor<\/td><td>2025.06.23<\/td><\/tr><tr><td>Li, Q. <em>et al.<\/em> Transdimensional anomalous Hall effect in rhombohedral thin graphite. <em>arXiv<\/em> (2025).<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2025.06.16<\/td><\/tr><tr><td>Savitsky, Z. \u2018Strange metals\u2019 point to a whole new way to understand electricity. <em>Science<\/em> <strong>388<\/strong>, 810\u2013814 (2025).<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2025.06.02<\/td><\/tr><tr><td>Ma, Y. <em>et al.<\/em> Optical parameters of graphene\/MoS2 van der Waals heterostructure investigated by spectroscopic ellipsometry. <em>Appl. Surf. Sci.<\/em> <strong>599<\/strong>, 153987 (2022).<\/td><td>M\u00e1rity Kriszti\u00e1n<\/td><td>2025.05.26<\/td><\/tr><tr><td>Mao, Y. <em>et al.<\/em> Orbital hybridization in graphene-based artificial atoms. <em>Nature<\/em> <strong>639<\/strong>, 73\u201378 (2025).<\/td><td>Kun P\u00e9ter<\/td><td>2025.05.19<\/td><\/tr><tr><td>Li, Y. <em>et al.<\/em> Engineering polar vortices via strain soliton interactions in marginally twisted multilayer graphene. <em>Nano Lett.<\/em> (2025) doi:10.1021\/acs.nanolett.4c05666.<\/td><td>Kandrai Konr\u00e1d<\/td><td>2025.05.12<\/td><\/tr><tr><td>Li, S. <em>et al.<\/em> Photon-counting Raman spectroscopy at a MHz spectral rate for biochemical imaging of an entire organism. <em>Nature Communications<\/em> <strong>16<\/strong>, 1\u201310 (2025).<\/td><td>K\u00e1lvin Gyuri<\/td><td>2025.05.05<\/td><\/tr><tr><td>Park, Y. <em>et al.<\/em> Unveiling the origin of n-type doping of natural MoS2: carbon. <em>npj 2D Materials and Applications<\/em> <strong>7<\/strong>, 1\u20137 (2023).<\/td><td>Dobrik Gerg\u0151<\/td><td>2025.04.28<\/td><\/tr><tr><td>Valley-polarized excitonic Mott insulator in WS2\/WSe2 moir\u00e9 superlattice, Nature Physics 20, 34\u201339 (2024).<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2025.04.14<\/td><\/tr><tr><td>Jovi\u010devi\u0107-Klug, M., Souza Filho, I. R., Springer, H., Adam, C. &amp; Raabe, D. Green steel from red mud through climate-neutral hydrogen plasma reduction. <em>Nature<\/em> <strong>625<\/strong>, 703\u2013709 (2024).<\/td><td>Balogh Andr\u00e1s<\/td><td>2025.04.07<\/td><\/tr><tr><td>Choi, Y., Choi, Y., Valentini, M., Patterson, C. L., Holleis, L. F. W., Sheekey, O. I., Stoyanov, H., Cheng, X., Taniguchi, T., Watanabe, K. &amp; Young, A. F. Superconductivity and quantized anomalous Hall effect in rhombohedral graphene. <em>Nature<\/em> 1\u20136 (2025).<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2025.03.31<\/td><\/tr><tr><td>Sharma, N. <em>et al.<\/em> Deriving material properties from feedback error signals in scanning tunneling microscopy. <em>Nano Lett.<\/em> (2025) doi:10.1021\/acs.nanolett.4c06404.<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2025.03.24<\/td><\/tr><tr><td>Quantum twisting microscope, low temp results. IWEPNM<\/td><td>Tapaszt\u00f3 Levente<\/td><td>2025.03.17<\/td><\/tr><tr><td>Zhou, W. <em>et al.<\/em> Layer-polarized ferromagnetism in rhombohedral multilayer graphene. <em>Nat. Commun.<\/em> <strong>15<\/strong>, 1\u20138 (2024).<\/td><td>Tajkov Zolt\u00e1n<\/td><td>2025.03.10<\/td><\/tr><tr><td>Chen, T. <em>et al.<\/em> Interaction-driven breakdown of Aharonov-Bohm caging in flat-band Rydberg lattices. <em>Nat. Phys.<\/em> <strong>21<\/strong>, 221\u2013227 (2025).<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2025.03.03<\/td><\/tr><tr><td>Ge, Z. <em>et al.<\/em> Direct visualization of relativistic quantum scars in graphene quantum dots. <em>Nature<\/em> <strong>635<\/strong>, 841\u2013846 (2024).<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2025.02.24<\/td><\/tr><tr><td>Sharma, A. <em>et al.<\/em> Assembly theory explains and quantifies selection and evolution. <em>Nature<\/em> <strong>622<\/strong>, 321\u2013328 (2023).<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2025.02.11<\/td><\/tr><tr><td>Zhang, H. <em>et al.<\/em> Correlated topological flat bands in rhombohedral graphite. <em>Proc. Natl. Acad. Sci.<\/em> <strong>121<\/strong>, e2410714121 (2024).<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2025.02.04<\/td><\/tr><tr><td>Guo, Y. <em>et al.<\/em> Superconductivity in 5.0\u00b0 twisted bilayer WSe2. <em>Nature<\/em> <strong>637<\/strong>, 839\u2013845 (2025).<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2025.01.28<\/td><\/tr><tr><td>Liu, H.-N., Cong, X., Lin, M.-L. &amp; Tan, P.-H. The intrinsic temperature-dependent Raman spectra of graphite in the temperature range from 4K to 1000K. <em>Carbon<\/em> <strong>152<\/strong>, 451\u2013458 (2019).<\/td><td>M\u00e1rity Kriszti\u00e1n<\/td><td>2025.01.21<\/td><\/tr><tr><td>Trainer, D.J. et al. Visualization of defect induced in-gap states in monolayer MoS2. npj 2D Mater Appl 6, 13 (2022).<\/td><td>Kun P\u00e9ter<\/td><td>2024.12.12<\/td><\/tr><tr><td>Szymanski, N. J. <em>et al.<\/em> An autonomous laboratory for the accelerated synthesis of novel materials. <em>Nature<\/em> <strong>624<\/strong>, 86\u201391 (2023).<\/td><td>Kandrai Konr\u00e1d<\/td><td>2024.12.03<\/td><\/tr><tr><td>F\u00e9tida, A. <em>et al.<\/em> Single-spin sensing: A molecule-on-tip approach. <em>ACS Nano<\/em> <strong>18<\/strong>, 13829\u201313835 (2024).<\/td><td>K\u00e1lvin Gy\u00f6rgy<\/td><td>2024.11.26<\/td><\/tr><tr><td>Mao, J. <em>et al.<\/em> Strain-engineered ferroelectricity in 2H bilayer MoS2. <em>ACS Nano<\/em> <strong>18<\/strong>, 30360\u201330367 (2024).<\/td><td>Dobrik Gerg\u0151<\/td><td>2024.11.19<\/td><\/tr><tr><td>Tunable angle-dependent electrochemistry at twisted bilayer graphene with moir\u00e9 flat bands.<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2024.11.12<\/td><\/tr><tr><td>Atri, S. S. <em>et al.<\/em> Spontaneous electric polarization in graphene polytypes. <em>Advanced Physics Research<\/em> <strong>3<\/strong>, (2024).<\/td><td>Balogh Andr\u00e1s<\/td><td>2024.11.05<\/td><\/tr><tr><td>Pica, G. <em>et al.<\/em> Photo-ferroelectric perovskite interfaces for boosting VOC in efficient perovskite solar cells. <em>Nat. Commun.<\/em> <strong>15<\/strong>, 8753 (2024).<\/td><td>Dab\u00f3czi M\u00e1ty\u00e1s<\/td><td>2024.10.29<\/td><\/tr><tr><td>Bian, R. <em>et al.<\/em> Developing fatigue-resistant ferroelectrics using interlayer sliding switching. <em>Science<\/em> <strong>385<\/strong>, 57\u201362 (2024).<\/td><td>Tapaszt\u00f3 Levente<\/td><td>2024.10.08<\/td><\/tr><tr><td>Natterer, F. D. <em>et al.<\/em> Strong Asymmetric Charge Carrier Dependence in Inelastic Electron Tunneling Spectroscopy of Graphene Phonons. <em>Phys. Rev. Lett.<\/em> <strong>114<\/strong>, 245502 (2015)<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2024.06.20<\/td><\/tr><tr><td>Wu, Z. <em>et al.<\/em> Evolution of the confined states in graphene nanobubbles. <em>Phys. Rev. B Condens. Matter<\/em> <strong>109<\/strong>, (2024)<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2024.06.13<\/td><\/tr><tr><td>Three-dimensional flat bands in pyrochlore metal CaNi2<br>Joshua P. Wakefield, et al.,<br>Nature, 623, 301\u2013306 (2023).<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2024.06.06<\/td><\/tr><tr><td>Lloyd, V. J. <em>et al.<\/em> The actin cytoskeleton plays multiple roles in structural colour formation in butterfly wing scales. <em>Nat. Commun.<\/em> <strong>15<\/strong>, 4073 (2024)<\/td><td>Piszter G\u00e1bor<\/td><td>2024.05.23<\/td><\/tr><tr><td>Utsumi, S. <em>et al.<\/em> Giant nanomechanical energy storage capacity in twisted single-walled carbon nanotube ropes. <em>Nat. Nanotechnol.<\/em> (2024)<\/td><td>Nemes-I. P\u00e9ter<\/td><td>2024.05.02<\/td><\/tr><tr><td>Zhao, J. <em>et al.<\/em> Ultrahigh-mobility semiconducting epitaxial graphene on silicon carbide. <em>Nature<\/em> <strong>625<\/strong>, 60\u201365 (2024)<\/td><td>Nemes-I. P\u00e9ter<\/td><td>2024.04.25<\/td><\/tr><tr><td>Tsui, Y.-C. <em>et al.<\/em> Direct observation of a magnetic-field-induced Wigner crystal. <em>Nature<\/em> <strong>628<\/strong>, 287\u2013292 (2024)<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2024.04.18<\/td><\/tr><tr><td>Lyu, B. <em>et al.<\/em> Graphene nanoribbons grown in hBN stacks for high-performance electronics. <em>Nature<\/em> 1\u20137 (2024)<\/td><td>Dobrik Gerg\u0151<\/td><td>2024.04.11<\/td><\/tr><tr><td>Zhong, C., Li, X. &amp; Yu, P. Strain-tunable Dirac semimetal phase transition and emergent superconductivity in a borophane. <em>Communications Physics<\/em> <strong>7<\/strong>, 1\u20139 (2024)<\/td><td>Kun P\u00e9ter<\/td><td>2024.04.04<\/td><\/tr><tr><td>Kirchhof, J. N. <em>et al.<\/em> Nanomechanical Spectroscopy of 2D Materials. <em>Nano Lett.<\/em> <strong>22<\/strong>, 8037\u20138044 (2022)<\/td><td>K\u00e1lvin Gy\u00f6rgy<\/td><td>2024.03.28<\/td><\/tr><tr><td>Yu, G. <em>et al.<\/em> Evidence for two dimensional anisotropic Luttinger liquids at millikelvin temperatures. <em>Nat. Commun.<\/em> <strong>14<\/strong>, 7025 (2023)<\/td><td>Kandrai Konr\u00e1d<\/td><td>2024.03.21<\/td><\/tr><tr><td>Yu, L. <em>et al.<\/em> Janus graphene: A two-dimensional half-auxetic carbon allotrope with a nonchemical Janus configuration. <em>Phys. Rev. B Condens. Matter<\/em> <strong>109<\/strong>, L121402 (2024)<\/td><td>Balogh Andr\u00e1s<\/td><td>2024.03.14<\/td><\/tr><tr><td>Tan, Z. <em>et al.<\/em> Angle-Resolved Optical Imaging of Interlayer Rotations in Twisted Bilayer Graphene. <em>ACS Appl. Mater. Interfaces<\/em> <strong>16<\/strong>, 10867\u201310876 (2024)<\/td><td>Tapaszt\u00f3 Levente<\/td><td>2024.02.29<\/td><\/tr><tr><td>Andrade, E., Pantale\u00f3n, P. A., Guinea, F. &amp; Naumis, G. G. Flat bands and electronic localization in twisted bilayer graphene nanoribbons. <em>Phys. Rev. B<\/em> <strong>108<\/strong>, 235418 (2023)<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2024.02.22<\/td><\/tr><tr><td>Yin, L.-J. <i>et al.<\/i> Imaging Friedel oscillations in rhombohedral trilayer graphene. <i>Phys. Rev. B<\/i> <b>107<\/b>, L041404 (2023)<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2024.02.08<\/td><\/tr><tr><td>Yang, T. H. <em>et al.<\/em> Ferroelectric transistors based on shear-transformation-mediated rhombohedral-stacked molybdenum disulfide. <em>Nature Electronics<\/em> 1\u201310 (2023)<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2024.02.01<\/td><\/tr><tr><td>Husain, A. A. <em>et al.<\/em> Pines\u2019 demon observed as a 3D acoustic plasmon in Sr2RuO4. <em>Nature<\/em> <strong>621<\/strong>, 66\u201370 (2023)<\/td><td>Nemes-Incze P\u00e9ter<\/td><td><mark><br><\/mark>2024.01.25<\/td><\/tr><tr><td>Zhou, Y.-Y. <em>et al.<\/em> Layer-dependent evolution of electronic structures and correlations in rhombohedral multilayer graphene. <em>arXiv<\/em> (2023)<\/td><td>Nemes-Incze P\u00e9ter<\/td><td><mark style=\"background-color:rgba(0, 0, 0, 0)\" class=\"has-inline-color has-black-color\">2024.01.18<\/mark><\/td><\/tr><tr><td>Yoon, H. H. <em>et al.<\/em> Miniaturized spectrometers with a tunable van der Waals junction. <em>Science<\/em> <strong>378<\/strong>, 296\u2013299 (2022)<\/td><td>Piszter G\u00e1bor<\/td><td>2023.11.30<\/td><\/tr><tr><td>Guba, Z., Frank, G., Pint\u00e9r, G. &amp; P\u00e1lyi, A. Weyl points in ball-and-spring mechanical systems. <em>arXiv <\/em> (2023)<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2023.11.23<\/td><\/tr><tr><td>H. Li et al., Electrode-Free Anodic Oxidation Nanolithography of Low-Dimensional Materials, Nano Letters 18 (12), 8011-8015, 2018.<\/td><td>Kun P\u00e9ter<\/td><td>2023.11.09<\/td><\/tr><tr><td>Zhou, Z.&nbsp;<em>et al.<\/em>&nbsp;Stack growth of wafer-scale van der Waals superconductor heterostructures.&nbsp;<em>Nature<\/em>&nbsp;<strong>621<\/strong>, 499\u2013505 (2023).<\/td><td>Kandrai Konr\u00e1d<\/td><td>2023.11.02<\/td><\/tr><tr><td>Chang, S., Yan, Y. &amp; Geng, Y. Local nanostrain engineering of monolayer MoS<sub>2<\/sub>&nbsp;using atomic force microscopy-based thermomechanical nanoindentation.&nbsp;<em>Nano Lett.<\/em>&nbsp;(2023) doi:10.1021\/acs.nanolett.3c01809.<\/td><td>K\u00e1lvin Gy\u00f6rgy<\/td><td>2023.10.26<\/td><\/tr><tr><td>Wang, W.&nbsp;<em>et al.<\/em>&nbsp;Ultra-clean assembly of van der Waals heterostructures.&nbsp;<em>arXiv<\/em>&nbsp;(2023).<\/td><td>Dobrik Gerg\u0151<\/td><td>2023.10.19<\/td><\/tr><tr><td>Henderson, P., Ghazaryan, A., Zibrov, A. A., Young, A. F. &amp; Serbyn, M. Deep learning extraction of band structure parameters from density of states: A case study on trilayer graphene.&nbsp;<em>Phys. Rev. B<\/em>&nbsp;<strong>108<\/strong>, 125411 (2023).<\/td><td>Balogh Andr\u00e1s<\/td><td><mark style=\"background-color:rgba(0, 0, 0, 0)\" class=\"has-inline-color has-black-color\">2023.10.12<\/mark><\/td><\/tr><tr><td>Rotational and dilational reconstruction in transition metal dichalcogenide moir\u00e9 bilayers. Nat.Comm. 14, 2989 (2023).<\/td><td>Tapaszt\u00f3 Levente<\/td><td>2023.06.15<\/td><\/tr><tr><td>Kang, K. <em>et al.<\/em> Switchable moir\u00e9 potentials in ferroelectric WTe2\/WSe2 superlattices. <em>Nat. Nanotechnol.<\/em> (2023) doi:10.1038\/s41565-023-01376-5<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2023.06.08<\/td><\/tr><tr><td>Tong, L.-H. <em>et al.<\/em> Spectroscopic Visualization of Flat Bands in Magic-Angle Twisted Monolayer-Bilayer Graphene: Coexistence of Localization and Delocalization. <em>Phys. Rev. Lett.<\/em> <strong>128<\/strong>, 126401 (2022)<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2023.06.01<\/td><\/tr><tr><td>Lemcoff, T. <em>et al.<\/em> Brilliant whiteness in shrimp from ultra-thin layers of birefringent nanospheres. <em>Nat. Photonics<\/em> 1\u20139 (2023)<\/td><td>Piszter G\u00e1bor<\/td><td>2023.05.25<\/td><\/tr><tr><td>Inbar, A. <em>et al.<\/em> The quantum twisting microscope. <em>Nature<\/em> <strong>614<\/strong>, 682\u2013687 (2023)<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2023.05.18<\/td><\/tr><tr><td>Zhou, X.-F. <em>et al.<\/em> Coexistence of Reconstructed and Unreconstructed Structures in Structural Transition Regime of Twisted Bilayer Graphene. <em>arXiv<\/em> (2022)<\/td><td>Kun P\u00e9ter<\/td><td>2023.03.09<\/td><\/tr><tr><td>Gadelha, A. C. <em>et al.<\/em> Localization of lattice dynamics in low-angle twisted bilayer graphene. <em>Nature<\/em> <strong>590<\/strong>, 405\u2013409 (2021)<\/td><td>Dobrik Gerg\u0151<\/td><td>2023.03.02<\/td><\/tr><tr><td>Houard, A. <em>et al.<\/em> Laser-guided lightning. <em>Nat. Photonics<\/em> 1\u20135 (2023)<\/td><td>Kandrai Konr\u00e1d<\/td><td>2023.02.23<\/td><\/tr><tr><td>McGilly, L. J. <em>et al.<\/em> Visualization of moir\u00e9 superlattices. <em>Nat. Nanotechnol.<\/em> <strong>15<\/strong>, 580\u2013584 (2020)<\/td><td>Dobrik Gerg\u0151<\/td><td>2023.02.09<\/td><\/tr><tr><td><em>bubbles on bulk MoS2<\/em><\/td><td>Tapaszt\u00f3 Levente<\/td><td>2023.02.02<\/td><\/tr><tr><td>Martinez-Castro, J. <em>et al.<\/em> Scanning Tunneling Microscopy of an Air Sensitive Dichalcogenide Through an Encapsulating Layer. <em>Nano Lett.<\/em> <strong>18<\/strong>, 6696\u20136702 (2018)<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2022.01.26<\/td><\/tr><tr><td>Park, M., Leahey, E. &amp; Funk, R. J. Papers and patents are becoming less disruptive over time. <em>Nature<\/em> <strong>613<\/strong>, 138\u2013144 (2023)<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2022.01.19<\/td><\/tr><tr><td>Choi, S. H. <em>et al.<\/em> Anderson light localization in biological nanostructures of native silk. <em>Nat. Commun.<\/em> <strong>9<\/strong>, 452 (2018)<\/td><td>Piszter G\u00e1bor<\/td><td>2022.12.01<\/td><\/tr><tr><td>Zhang, S. <em>et al.<\/em> Dual-Scale Stick-Slip Friction on Graphene-BN Moir\u2019e Superlattice Structure. <em>Phys. Rev. Lett.<\/em> <strong>128<\/strong>, 226101 (2022)<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2022.11.16<\/td><\/tr><tr><td>Barboza, A. M., Aliaga, L. C. R., Faria, D. &amp; Bastos, I. N. Bilayer graphene kirigami. <em>Carbon Trends<\/em> <strong>9<\/strong>, 100227 (2022)<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2022.11.10<\/td><\/tr><tr><td>Coissard, A. <em>et al.<\/em> Absence of edge reconstruction for quantum Hall edge channels in graphene devices. <em>arXiv [cond-mat.mes-hall]<\/em> (2022)<\/td><td>Kun P\u00e9ter<\/td><td>2022.10.27<\/td><\/tr><tr><td>Liu, C. <em>et al.<\/em> Designed growth of large bilayer graphene with arbitrary twist angles. <em>Nat. Mater.<\/em> 1\u20136 (2022)<\/td><td>Kandrai Konr\u00e1d<\/td><td>2022.10.14<\/td><\/tr><tr><td>Wu, C. <em>et al.<\/em> Tailoring Dirac fermions by in-situ tunable high-order moire pattern in graphene-monolayer xenon heterostructure. <em>arXiv<\/em> (2022)<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td><mark style=\"background-color:rgba(0, 0, 0, 0)\" class=\"has-inline-color has-black-color\">2022.10.07<\/mark><\/td><\/tr><tr><td>Li, S.-Y. <em>et al.<\/em> Imaging topological and correlated insulating states in twisted monolayer-bilayer graphene. <em>Nat. Commun.<\/em> <strong>13<\/strong>, 4225 (2022)<\/td><td>Nemes-I. P\u00e9ter<\/td><td>2022.09.30<\/td><\/tr><tr><td>Jia, P. <em>et al.<\/em> Programmable graphene nanobubbles with three-fold symmetric pseudo-magnetic fields. <em>Nat. Commun.<\/em> <strong>10<\/strong>, 3127 (2019)<br><br>Chen, Y. <em>et al.<\/em> A versatile approach to create nanobubbles on arbitrary two\u2010dimensional materials for imaging exciton localization. <em>Adv. Mater. Interfaces<\/em> 2201079 (2022)<\/td><td>Tapaszt\u00f3 Levente<\/td><td>2022.09.23<\/td><\/tr><tr><td>Wang, P. <em>et al.<\/em> One-dimensional Luttinger liquids in a two-dimensional moir\u00e9 lattice. <em>Nature<\/em> <strong>605<\/strong>, 57\u201362 (2022)<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2022.09.15<\/td><\/tr><tr><td>L\u00fcpke, F. <em>et al.<\/em> Quantum spin Hall edge states in twisted-bilayer 1T\u2019-WTe<sub>2<\/sub>. <em>arXiv<\/em> (2020)<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2022.06.16<\/td><\/tr><tr><td>Bolognesi, M. <em>et al.<\/em> Epitaxial multilayers of alkanes on two-dimensional black phosphorus as passivating and electrically insulating nanostructures. <em>Nanoscale<\/em> <strong>11<\/strong>, 17252\u201317261 (2019).<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2022.06.02<\/td><\/tr><tr><td>Wu, H. <em>et al.<\/em> Identification of abrupt intense rhombohedral stacking-transitions in dense-staircase-sublattices created by manual exfoliation of highly oriented pyrolytic graphite. <em>Carbon Trends<\/em> <strong>5<\/strong>, 100128 (2021)<\/td><td>Nemes-I. P\u00e9ter<\/td><td>2022.05.26<\/td><\/tr><tr><td>Graphene flagship, general assembly besz\u00e1mol\u00f3<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2022.05.19<\/td><\/tr><tr><td>Coissard, A. <em>et al.<\/em> Imaging tunable quantum Hall broken-symmetry orders in graphene. <em>Nature<\/em> <strong>605<\/strong>, 51\u201356 (2022)<\/td><td>Kun P\u00e9ter<\/td><td>2022.05.13<\/td><\/tr><tr><td>Paz, W. S. <em>et al.<\/em> Franckeite as an Exfoliable Naturally Occurring Topological Insulator. <em>Nano Lett.<\/em> <strong>21<\/strong>, 7781\u20137788 (2021)<\/td><td>Kandrai Konr\u00e1d<\/td><td>2022.05.06<\/td><\/tr><tr><td>Turkel, S. <em>et al.<\/em> Orderly disorder in magic-angle twisted trilayer graphene. <em>Science<\/em> <strong>376<\/strong>, 193\u2013199 (2022)<\/td><td>Dobrik Gerg\u0151<\/td><td>2022.04.21<\/td><\/tr><tr><td>Wirth, K. G. <em>et al.<\/em> Experimental observation of ABCB stacked tetralayer graphene. <em>arXiv [cond-mat.mes-hall]<\/em> (2022)<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2022.04.07<\/td><\/tr><tr><td>Schuler, B. <em>et al.<\/em> Electrically driven photon emission from individual atomic defects in monolayer WS<sub>2<\/sub>. <em>Sci Adv<\/em> <strong>6<\/strong>, (2020)<\/td><td>Tapaszt\u00f3 Levente<\/td><td>2022.03.31<\/td><\/tr><tr><td>Hung Nguyen, V., Hoang, T. X. &amp; Charlier, J.-C. Electronic properties of twisted multilayer graphene. <em>arXiv<\/em> (2022)<\/td><td>Tajkov Zoli<\/td><td>2022.03.24<\/td><\/tr><tr><td>Identifying atomically thin crystals with diffusively reflected light<br>Domaretskiy D, Ubrig N, Gutierrez Lezama I, Tran M, Morpurgo A.<br><em>2D Materials<\/em> <strong>(2021)<\/strong>, 8, 045016<\/td><td>Piszter G\u00e1bor<\/td><td>2022.03.03<\/td><\/tr><tr><td>Brun, B. <em>et al.<\/em> Graphene Whisperitronics: Transducing Whispering Gallery Modes into Electronic Transport. <em>Nano Lett.<\/em> <strong>22<\/strong>, 128\u2013134 (2022)<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2022.02.24<\/td><\/tr><tr><td>Dutreix, C. &amp; Katsnelson, M. I. Friedel oscillations at the surfaces of rhombohedral N-layer graphene. <em>Phys. Rev. B<\/em> <strong>93<\/strong>, 035413 (2016)<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2022.02.17<\/td><\/tr><tr><td>Kavokine, N., Bocquet, ML. &amp; Bocquet, L. Fluctuation-induced quantum friction in nanoscale water flows. Nature 602, 84\u201390 (2022).<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2022.02.10<\/td><\/tr><tr><td>Hesp, N. C. H. <em>et al.<\/em> Nano-imaging photoresponse in a moir\u00e9 unit cell of minimally twisted bilayer graphene. <em>Nat. Commun.<\/em> <strong>12<\/strong>, 1640 (2021)<\/td><td>Kun P\u00e9ter<\/td><td>2022.02.03<\/td><\/tr><tr><td>Park, J. M. <em>et al.<\/em> Magic-Angle Multilayer Graphene: A Robust Family of Moir\u00e9 Superconductors. <em>arXiv [cond-mat.supr-con]<\/em> (2021)<\/td><td>Kandrai Konr\u00e1d<\/td><td>2022.01.27<\/td><\/tr><tr><td>Barbosa, T. C. <em>et al.<\/em> Raman spectra of twisted bilayer graphene close to the magic angle. <em>arXiv [cond-mat.mes-hall]<\/em> (2022)<\/td><td>Dobrik Gerg\u0151<\/td><td>2022.01.20<\/td><\/tr><tr><td>Wieder, B. J. <em>et al.<\/em> Topological materials discovery from crystal symmetry. <em>Nature Reviews Materials<\/em> 1\u201321 (2021) doi:10.1038\/s41578-021-00380-2<\/td><td>Tajkov Zolt\u00e1n<\/td><td>2021.12.09<\/td><\/tr><tr><td>Galeski, S. <em>et al.<\/em> Origin of the quasi-quantized Hall effect in ZrTe5. <em>Nat. Commun.<\/em> <strong>12<\/strong>, 3197 (2021)<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2021.12.02<\/td><\/tr><tr><td>Hung Nguyen, V. <em>et al.<\/em> Electronic localization in small-angle twisted bilayer graphene. <em>2D Mater.<\/em> <strong>8<\/strong>, 035046 (2021)<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2021.11.25<\/td><\/tr><tr><td> Droguet, B.E., Liang, HL., Frka-Petesic, B. et al. Large-scale fabrication of structurally coloured cellulose nanocrystal films and effect pigments. Nature Materials (2021). <\/td><td>Piszter G\u00e1bor<\/td><td>2021.11.18<\/td><\/tr><tr><td>Endo, O. <em>et al.<\/em> Incommensurate crystalline phase of n -alkane monolayers on graphite (0001). <em>J. Phys. Chem. C<\/em> <strong>115<\/strong>, 5720\u20135725 (2011)<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2021.11.04<\/td><\/tr><tr><td> Zhou, H. <em>et al.<\/em> Half- and quarter-metals in rhombohedral trilayer graphene. <em>Nature<\/em> <strong>598<\/strong>, 429\u2013433 (2021) <\/td><td>Nemes I. P\u00e9ter<\/td><td>2021.10.28<\/td><\/tr><tr><td>Mishra, S. <em>et al.<\/em> Observation of fractional edge excitations in nanographene spin chains. <em>Nature<\/em> <strong>598<\/strong>, 287\u2013292 (2021)<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2021.10.21<\/td><\/tr><tr><td>Shabani, S., Halbertal, D., Wu, W. et al. Deep moir\u00e9 potentials in twisted transition metal dichalcogenide bilayers. Nat. Phys. 17, 720\u2013725 (2021).<\/td><td>Kun P\u00e9ter<\/td><td>2021.10.14<\/td><\/tr><tr><td>Li, Z. <em>et al.<\/em> Dry Exfoliation of Large-Area 2D Monolayer and Heterostructure Arrays. <em>ACS Nano<\/em> (2021) doi:10.1021\/acsnano.1c05734<\/td><td>Dobrik Gerg\u0151<\/td><td>2021.09.30<\/td><\/tr><tr><td>Zhou, Y. <em>et al.<\/em> Bilayer Wigner crystals in a transition metal dichalcogenide heterostructure. <em>Nature<\/em> <strong>595<\/strong>, 48\u201352 (2021)<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2021.09.23<\/td><\/tr><tr><td>Blackwell, R. E. <em>et al.<\/em> Spin splitting of dopant edge state in magnetic zigzag graphene nanoribbons. <em>Nature<\/em> <strong>600<\/strong>, 647\u2013652 (2021)<\/td><td>Tapaszt\u00f3 Levente<\/td><td>2021.09.16<\/td><\/tr><tr><td>Zeng, M., Liu, J., Zhou, L. et al. Bandgap tuning of two-dimensional materials by sphere diameter engineering. Nat. Mater. (2020). https:\/\/doi.org\/10.1038\/s41563-020-0622-y<\/td><td>Pet\u0151 J\u00e1nos<\/td><td>2020.03.13<\/td><\/tr><tr><td>G. Calogero, N. Papior, M. Koleini, M.H.L. Larsen, M. Brandbyge,&nbsp;Multi-scale approach to first-principles electron transport beyond 100 nm,&nbsp;Nanoscale 11 (2019) 6153\u20136164.<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2020.03.06<\/td><\/tr><tr><td>Dutreix, C. et al. Measuring the Berry phase of graphene from wavefront dislocations in Friedel oscillations. Nature 574, 219\u2013222 (2019).<\/td><td>Nemes I. P\u00e9ter<\/td><td>2020.02.28<\/td><\/tr><tr><td>R. Ribeiro-Palau, C. Zhang, K. Watanabe, T. Taniguchi, J. Hone, C. R. Dean, Twistable electronics with dynamically rotatable heterostructures, Science 361, 690\u2013693 (2018).<\/td><td>Kun P\u00e9ter<\/td><td>2020.02.14<\/td><\/tr><tr><td>Palleschi, S.; et al. On the Role of Nano-Confined Water at the 2D\/SiO2 Interface in Layer Number Engineering of Exfoliated MoS2 via Thermal Annealing. 2D Mater. 2020, 7 (2), 025001. <a href=\"https:\/\/doi.org\/10.1088\/2053-1583\/ab5bf8\">https:\/\/doi.org\/10.1088\/2053-1583\/ab5bf8<\/a>.<\/td><td>Csikai D\u00e1vid<\/td><td>2020.02.07<\/td><\/tr><tr><td>Chen, W.; Sun, Z.; Gu, L.; Xu, X.; Wu, S.; Gao, C. Direct Observation of van Der Waals Stacking Dependent Interlayer Magnetism. Science 2019, 366 (November), 983\u2013987. <a href=\"https:\/\/doi.org\/10.1126\/science.aav1937\">https:\/\/doi.org\/10.1126\/science.aav1937<\/a>.<\/td><td>Nemes I. P\u00e9ter<\/td><td>2020.01.31<\/td><\/tr><tr><td>Niels Ehlen, et al., Origin of the Flat Band in Heavily Cs-Doped Graphene,&nbsp;ACS Nano (2019)<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2020.01.24<\/td><\/tr><tr><td>Tsai, K. et al. Correlated Superconducting and Insulating States in Twisted Trilayer Graphene Moire of Moire Superlattices. arXiv (2019).<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2019.12.13<\/td><\/tr><tr><td>Kerelsky, A. et al. Moir\\\u2019e-less Correlations in ABCA Graphene. arXiv (2019).&nbsp;<a href=\"http:\/\/arxiv.org\/abs\/1911.00007\">http:\/\/arxiv.org\/abs\/1911.00007<\/a><\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2019.12.06<\/td><\/tr><tr><td>Xiong, L., Forsythe, C., Jung, M. et al. Photonic crystal for graphene plasmons. Nature Communications 10, 4780 (2019).<\/td><td>Piszter G\u00e1bor&nbsp;<\/td><td>2019.11.29<\/td><\/tr><tr><td>Rebekah A. Wells, et al.,&nbsp;Roll-to-Roll Deposition of Semiconducting 2D Nanoflake Films of Transition Metal Dichalcogenides for Optoelectronic Applications,&nbsp;ACS Appl. Nano Mater. 2019<\/td><td>Pet\u0151 J\u00e1nos<\/td><td>2019.11.22<\/td><\/tr><tr><td>Zhang, Z. et al. Flat bands in small angle twisted bilayer WSe2. arXiv (2019).&nbsp;1910.13068<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2019.11.15<\/td><\/tr><tr><td>Trevor B. Arp, et al.&nbsp;Natural Regulation of Energy Flow in a Green Quantum&nbsp;&nbsp;Photocell, Nano Letters, (2019),&nbsp;10.1021\/acs.nanolett.6b03136<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2019.10.25<\/td><\/tr><tr><td>Inoue, H., Gyenis, A., Wang, Z., Li, J., Oh, S. W., Jiang, S., Ni, N., Bernevig, B. A. &amp; Yazdani, A. Quasiparticle interference of the Fermi arcs and surface-bulk connectivity of a Weyl semimetal. Science 351, 1184\u20131187 (2016).<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2019.10.18<\/td><\/tr><tr><td>Zheng et al., Patterning metal contacts on monolayer MoS2 with vanishing Schottky barriers using thermal nanolithography, Nature Electronics 2, 17\u201325 (2019).<\/td><td>Kun P\u00e9ter<\/td><td>2019.10.11<\/td><\/tr><tr><td>Akius, K. &amp; van Ruitenbeek, J. Graphene nano-origami using Scanning Tunneling Microscopy. arXiv (2018). at <a href=\"http:\/\/arxiv.org\/abs\/1812.09501\">http:\/\/arxiv.org\/abs\/1812.09501<\/a><\/td><td>Csikai D\u00e1vid<\/td><td>2019.10.03<\/td><\/tr><tr><td>Marrazzo, A., Marzari, N. &amp; Gibertini, M. Emergent dual topology in the three-dimensional Kane-Mele Pt2HgSe3. arXiv (2019). at <a href=\"http:\/\/arxiv.org\/abs\/1909.05050\">http:\/\/arxiv.org\/abs\/1909.05050<\/a><\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2019.09.27<\/td><\/tr><tr><td>Jesse Berezovsky,&nbsp;The structure of musical harmony as an ordered phase of sound: A statistical mechanics approach to music theory,&nbsp;Science Advances,&nbsp;(2019) 5, eaav8490<\/td><td>Szendr\u0151 M\u00e1rton&nbsp;<\/td><td>2019.09.20<\/td><\/tr><tr><td>Yuhang Jiang, Xinyuan Lai, Kenji Watanabe, Takashi Taniguchi, Kristjan Haule, Jinhai Mao &amp; Eva Y. Andrei, Charge order and broken rotational symmetry in magic-angle twisted bilayer graphene, Nature, 573, 91\u201395 (2019)<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2019.09.13<\/td><\/tr><tr><td>Chen, Z., Fu, F., Yu, Y., Wang, H., Shang, Y., &amp; Zhao, Y. (2018). Cardiomyocytes-Actuated Morpho Butterfly Wings. <em>Advanced Materials<\/em>, 1805431.<\/td><td>Piszter G\u00e1bor<\/td><td>2019.09.06<\/td><\/tr><tr><td>Jia et al., Programmable graphene nanobubbles with threefold symmetric pseudo-magnetic fields, Nat. Commun. 2019<\/td><td>Pet\u0151 J\u00e1nos<\/td><td>2019.08.30<\/td><\/tr><tr><td>Uhlig, M. R., Martin-Jimenez, D. &amp; Garcia, R. Atomic-scale mapping of hydrophobic layers on graphene and few-layer MoS2 and WSe2 in water. <em>Nat. Commun.<\/em> <strong>10<\/strong>, 2606 (2019).<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2019.07.26<\/td><\/tr><tr><td>Verhagen, T., et al. Superlattice in collapsed graphene wrinkles. Scientific Reports 9, 9972 (2019)<\/td><td>Kun P\u00e9ter<\/td><td>2019.07.19<\/td><\/tr><tr><td>Tang, F., Ren, Y., Wang, P., Zhong, R., Schneeloch, J., Yang, S. A., Yang, K., Lee, P. A., Gu, G., Qiao, Z. &amp; Zhang, L. Three-dimensional quantum Hall effect and metal\u2013insulator transition in ZrTe5. Nature 569, 537\u2013541 (2019).<\/td><td>Nemes I. P\u00e9ter<\/td><td>2019.07.12<\/td><\/tr><tr><td>Gr\u00f6ning, O., Wang, S., Yao, X., Pignedoli, C. A., Borin Barin, G., Daniels, C., Cupo, A., Meunier, V., Feng, X., Narita, A., M\u00fcllen, K., Ruffieux, P. &amp; Fasel, R. Engineering of robust topological quantum phases in graphene nanoribbons. Nature 560, 209\u2013213 (2018).<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2019.06.28<\/td><\/tr><tr><td>Alejandro Lopez-Bezanilla, Jose L. Lado,&nbsp;Defect-induced magnetism and Yu-Shiba-Rusinov states in twisted bilayer graphene, arXiv, 2019<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2019.06.14<\/td><\/tr><tr><td>Jiang, Y., An\u0111elkovi\u0107, M., Milovanovi\u0107, S. P., Covaci, L., Lai, X., Cao, Y., Watanabe, K., Taniguchi, T., Peeters, F. M., Geim, A. K. &amp; Andrei, E. Y. Flat Bands in Buckled Graphene Superlattices. arXiv (2019). at &lt;<a href=\"http:\/\/arxiv.org\/abs\/1904.10147\">http:\/\/arxiv.org\/abs\/1904.10147<\/a>&gt;<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2019.05.17<\/td><\/tr><tr><td>Photonic crystals for nano-light in moir\u00e9 graphene superlattices, Sunku <em>et al.<\/em>, <em>Science<\/em> <strong>362<\/strong>, 1153-1156 (2018)<\/td><td>Piszter G\u00e1bor<\/td><td>2019.05.03<\/td><\/tr><tr><td>BS Jenssen et al., Lithographic band structure engineering of graphene, Nat. Nanotech. 14, 340\u2013346. (2019)<\/td><td>Kun P\u00e9ter<\/td><td>2019.04.26<\/td><\/tr><tr><td>Vincent, T. et al. Probing the nanoscale origin of strain and doping in graphene-hBN heterostructures. 2D Mater. 6, (2019).<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2019.04.12<\/td><\/tr><tr><td>Wang, L., Zihlmann, S., Liu, M.-H., Makk, P., Watanabe, K., Taniguchi, T., Baumgartner, A. &amp; Sch\u00f6nenberger, C. New Generation of Moir\u00e9 Superlattices in Doubly Aligned hBN\/Graphene\/hBN Heterostructures. Nano Lett. (2019). doi:10.1021\/acs.nanolett.8b05061<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2019.04.05<\/td><\/tr><tr><td>Nigge, P., Qu, A. C., Lantagne-Hurtubise, \u00c9., M\u00e5rsell, E., Link, S., Tom, G., Zonno, M., Michiardi, M., Schneider, M., Zhdanovich, S., Levy, G., Starke, U., Guti\u00e9rrez, C., Bonn, D., Burke, S. A., Franz, M. &amp; Damascelli, A. Room temperature strain-induced quantum Hall effect in graphene on a wafer-scale platform. arXiv (2019). at &lt;<a href=\"http:\/\/arxiv.org\/abs\/1902.00514\">http:\/\/arxiv.org\/abs\/1902.00514<\/a>&gt;<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2019.03.29<\/td><\/tr><tr><td>Anastasia V. Tyurnina, et al. Strained Bubbles in van der Waals Heterostructures as Local Emitters of Photoluminescence with Adjustable Wavelength, ACS Photonics, 2019, 6, 516\u2013524<\/td><td>Pet\u0151 J\u00e1nos<\/td><td>2019.03.22<\/td><\/tr><tr><td>Masubuchi, S. &amp; Machida, T. Classifying optical microscope images of exfoliated graphene flakes by data-driven machine learning. npj 2D Mater. Appl. 3, 4 (2019).<\/td><td>Hoffmann \u00c1kos<\/td><td>2019.03.08<\/td><\/tr><tr><td>Time-evolution patterns of electrons in twisted bilayer graphene, arXiv:1901.02794v1 [cond-mat.mes-hall] 9 Jan 2019<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2019.02.22<\/td><\/tr><tr><td>St\u00fchler, R. et al. Tomonaga-Luttinger liquid in the edge channels of a quantum spin Hall insulator. arXiv (2019).<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2019.02.15<\/td><\/tr><tr><td>Anna V. Prydatko, et al,&nbsp;Contact angle measurement of free-standing square-millimeter single-layer graphene,&nbsp;Nature Communications 9, 4185 (2018)<\/td><td>P\u00e1link\u00e1s Andr\u00e1s<\/td><td>2019.02.08<\/td><\/tr><tr><td>Kerelsky, A., McGilly, L. J., Kennes, D. M., Xian, L., Yankowitz, M., Chen, S., Watanabe, K., Taniguchi, T., Hone, J., Dean, C., Rubio, A. &amp; Pasupathy, A. N. Maximized electron interactions at the magic angle in twisted bilayer graphene. Nature 572, 95\u2013100 (2019).<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2019.02.01<\/td><\/tr><tr><td>In situ printing of liquid superlenses for subdiffraction-limited color imaging of nanobiostructures in natureBoliang Jia, Feifei Wang, Hoyin Chan, Guanglie Zhang &amp; Wen Jung Li: Microsystems &amp; Nanoengineering 5, 2019, 1.<\/td><td>Piszter G\u00e1bor<\/td><td>2019.01.25<\/td><\/tr><tr><td>M. D. Siao, et al.&nbsp;Two-dimensional electronic transport and surface electron accumulation in MoS2,&nbsp;Nature Communications, 9, 1442 (2018)<\/td><td>Pet\u0151 J\u00e1nos<\/td><td>2019.01.18.<\/td><\/tr><tr><td>Velick\u00fd, M. et al. Mechanism of Gold-Assisted Exfoliation of Centimeter-Sized Transition-Metal Dichalcogenide Monolayers. ACS Nano 12, 10463\u201310472 (2018).<\/td><td>Hoffmann \u00c1kos<\/td><td>2018.12.14.<\/td><\/tr><tr><td><em>elmaradt<\/em><\/td><td>M\u00e1rk G\u00e9za<\/td><td>2018.12.07<\/td><\/tr><tr><td>Filippo Pizzocchero, Lene Gammelgaard, Bjarke S. Jessen, Jos\u00e9 M. Caridad, Lei Wang, James Hone, Peter B\u00f8ggild, Timothy J. Booth, The hot pick-up technique for batch assembly of van der Waals heterostructures, Nature Communications 7, 11894 (2016)<\/td><td>Kun P\u00e9ter<\/td><td>2018.11.30<\/td><\/tr><tr><td>A. Hamo et al., Electron attraction mediated by Coulomb repulsion. Nature. 535, 395\u2013400 (2016).<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2018.11.23<\/td><\/tr><tr><td>Wu, X., Fink, M., Hanke, W., Thomale, R. &amp; Di Sante, D. Unconventional superconductivity in a doped quantum spin Hall insulator. arXiv (2018).<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2018.11.15<\/td><\/tr><tr><td>Nam, Y., Ki, D., Soler-Delgado, D. &amp; Morpurgo, A. F. A family of finite-temperature electronic phase transitions in graphene multilayers. Science 362, 324\u2013328 (2018).<\/td><td>Nemes-Incze P\u00e9ter<\/td><td>2018.11.09<\/td><\/tr><tr><td>Louk Rademaker, Paula Mellado,&nbsp;Charge-transfer insulation in twisted bilayer graphene, arXiv (2018)&nbsp;1805.05294<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2018.10.19<\/td><\/tr><tr><td>Jagoda S\u0142awi\u0144ska and Jorge I. Cerd\u00e1,&nbsp; Spin-orbit proximity effect in graphene on metallic substrates: decoration vs intercalation with metal adatoms.&nbsp;arXiv:1809.08773v1 (2018)<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2018.10.12<\/td><\/tr><tr><td>Rashidi, M. &amp; Wolkow, R. A. Autonomous Scanning Probe Microscopy in Situ Tip Conditioning through Machine Learning. ACS Nano 12, 5185\u20135189 (2018).<\/td><td>Piszter G\u00e1bor<\/td><td>2018.10.05<\/td><\/tr><tr><td>Shuai Zhang, et al.&nbsp;Defect Structure of Localized Excitons in a WSe2 Monolayer,&nbsp;Phys. Rev. Lett. 119, 046101 (2017)<\/td><td>Pet\u0151 J\u00e1nos<\/td><td>2018.09.28<\/td><\/tr><tr><td>light scattering in an amorphous medium<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2018.09.21<\/td><\/tr><tr><td>Shi, Y., Kahn, J., Niu, B., Fei, Z., Sun, B., Cai, X., Francisco, B. A., Wu, D., Shen, Z.-X., Xu, X., Cobden, D. H. &amp; Cui, Y.-T. Imaging Quantum Spin Hall Edges in Monolayer WTe2. arXiv (2018). at &lt;<a href=\"http:\/\/arxiv.org\/abs\/1807.09342\">http:\/\/arxiv.org\/abs\/1807.09342<\/a>&gt;<\/td><td>Nemes-I. Peter<\/td><td>2018.09.14<\/td><\/tr><tr><td>Clark, N., Nguyen, L., Hamer, M. J., Schedin, F., Lewis, E. A., Prestat, E., Garner, A., Cao, Y., Zhu, M., Kashtiban, R., Sloan, J., Kepaptsoglou, D., Gorbachev, R. V. &amp; Haigh, S. J. Scalable Patterning of Encapsulated Black Phosphorus. Nano Lett. (2018). doi:10.1021\/acs.nanolett.8b00946<\/td><td>Kun P\u00e9ter<\/td><td>2018.09.07<\/td><\/tr><tr><td>Ma, X., Liu, Q., Xu, D., Zhu, Y., Kim, S., Cui, Y., Zhong, L. &amp; Liu, M. Capillary-Force-Assisted Clean-Stamp Transfer of Two-Dimensional Materials. Nano Lett. 17, 6961\u20136967 (2017).<\/td><td>Hoffmann \u00c1kos<\/td><td>2018.08.17<\/td><\/tr><tr><td>Masuyama, et al. Information-to-work conversion by Maxwell\u2019s demon in a superconducting circuit quantum electrodynamical system, Nature Communicationsvolume 9, Article number: 1291 (2018)<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2018.08.03<\/td><\/tr><tr><td>Walter, E., Rosdahl, T. \u00d6., Akhmerov, A. R. &amp; Hassler, F. Breakdown of the law of reflection at a disordered graphene edge. arXiv (2018).<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2018.07.20<\/td><\/tr><tr><td>Chen, C. J. Microscopic view of scanning tunneling microscopy. J. Vac. Sci. Technol. A 9, 44 (1991).Gross, L. et al. High-Resolution Molecular Orbital Imaging Using a p-Wave STM Tip. Phys. Rev. Lett. 107, 086101 (2011).<\/td><td>Nemes I. P\u00e9ter<\/td><td>2018.07.13<\/td><\/tr><tr><td>Biotemplated <em>Morpho<\/em> Butterfly Wings for Tunable Structurally Colored PhotocatalystsACS Appl. Mater. Interfaces 2018, 10, 4614\u22124621<\/td><td>Piszter G\u00e1bor<\/td><td>2018.07.06<\/td><\/tr><tr><td>Onga, M., Zhang, Y., Ideue, T. &amp; Iwasa, Y. Exciton Hall effect in monolayer MoS2. Nat. Mater. 16, 1193\u20131198 (2017).<\/td><td>Pet\u0151 Jani<\/td><td>2018.06.29<\/td><\/tr><tr><td>Cao, Y. et al., Correlated insulator behaviour at half-filling in magic-angle graphene superlattices, Nature 556 (2018) 80-84.Cao, Y. et al., Unconventional superconductivity in magic-angle graphene superlattices, Nature 556 (2018) 43-50.<\/td><td>Kun P\u00e9ter<\/td><td>2018.06.22<\/td><\/tr><tr><td>konferencia beszamolo<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2018.06.15.<\/td><\/tr><tr><td>Shin, B. G. et al. Indirect Bandgap Puddles in Monolayer MoS2 by Substrate-Induced Local Strain. Adv. Mater. 28, 9378\u20139384 (2016).<\/td><td>Nemes I. P\u00e9ter<\/td><td>2018.06.01.<\/td><\/tr><tr><td>MoS2 edge states<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2018.05.25.<\/td><\/tr><tr><td>Naik, M. H. &amp; Jain, M. Ultraflat bands and shear solitons in Moir\\\u2019e patterns of twisted bilayer transition metal dichalcogenides. arXiv (2018).<\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2018.05.18.<\/td><\/tr><tr><td>Zhang, L. et al. Electronic Coupling between Graphene and Topological Insulator Induced Anomalous Magnetotransport Properties. ACS Nano 11, 6277\u20136285 (2017).<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2018.05.04.<\/td><\/tr><tr><td>Gallagher, P. et al. Optical Imaging and Spectroscopic Characterization of Self-Assembled Environmental Adsorbates on Graphene. Nano Lett. (2018). doi:10.1021\/acs.nanolett.8b00348<\/td><td>Piszter G\u00e1bor<\/td><td>2018.04.27.<\/td><\/tr><tr><td>Hridis K. Pal, Stephen Spitz, Markus Kindermann,&nbsp;Emergent geometric frustration and flat band in moir\u00e9 bilayer graphene, arXiv, (2018),&nbsp;<a href=\"https:\/\/arxiv.org\/abs\/1803.07060\">https:\/\/arxiv.org\/abs\/1803.07060<\/a><\/td><td>Szendr\u0151 M\u00e1rton<\/td><td>2018.04.20.<\/td><\/tr><tr><td>Charge density wave order in 1D mirror twin boundaries of single-layer MoSe2, NATURE PHYSICS, 12 751 (2016)<\/td><td>Vancs\u00f3 P\u00e9ter<\/td><td>2018.04.06<\/td><\/tr><tr><td>C.-Z. Chang et al., Experimental Observation of the Quantum Anomalous Hall Effect in a Magnetic Topological Insulator. Science. 340, 167\u2013170 (2013).<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2018.03.09.<\/td><\/tr><tr><td>Lukas Linhart, Joachim Burgd\u00f6rfer, and Florian Libisch, Accurate modeling of defects in graphene transport calculations,&nbsp;97, 035430 (2018)<\/td><td>M\u00e1rk G\u00e9za<\/td><td>2018.03.02<\/td><\/tr><tr><td>E.J. Telford et al., Via Method for Lithography Free Contact and Preservation of 2D Materials, Nano Lett., 2018, 18 (2), pp 1416\u20131420.<\/td><td>Kun P\u00e9ter<\/td><td>2018.02.23<\/td><\/tr><tr><td>M. M. Ugeda et al., Observation of Topologically Protected States at Crystalline Phase Boundaries in Single-layer WSe2. arXiv (2018) (available at <a href=\"http:\/\/arxiv.org\/abs\/1802.01339\">http:\/\/arxiv.org\/abs\/1802.01339<\/a>).<\/td><td>Nemes I. P\u00e9ter<\/td><td>2018.02.16.<\/td><\/tr><tr><td>E. Khestanova, F. Guinea, L. Fumagalli, A. K. Geim, I. V. Grigorieva, Universal shape and pressure inside bubbles appearing in van der Waals heterostructures. Nat. Commun. 7, 12587 (2016).<\/td><td>Pet\u0151 J\u00e1nos<\/td><td>2018.02.09.<\/td><\/tr><tr><td>elmaradt<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2018.02.02.<\/td><\/tr><tr><td>L. Wu et al., Highly sensitive, reproducible and uniform SERS substrates with a high density of three-dimensionally distributed hotspots: gyroid-structured Au periodic metallic materials. NPG Asia Mater. 10, e462 (2018).<\/td><td>Piszter G\u00e1bor<\/td><td>2018.01.26.<\/td><\/tr><tr><td>A. Marrazzo, M. Gibertini, D. Campi, N. Mounet, N. Marzari, Prediction of a room-temperature and switchable Kane-Mele quantum spin Hall insulator. arXiv (2017) (available at <a href=\"http:\/\/arxiv.org\/abs\/1712.03873\">http:\/\/arxiv.org\/abs\/1712.03873<\/a>).<\/td><td>Nemes I. P\u00e9ter<\/td><td>2018.01.19<\/td><\/tr><tr><td>Suzhi Li et al., The evolving quality of frictional contact with graphene, Nature.&nbsp;539,&nbsp;541\u2013545 (2016).<\/td><td>P\u00e1link\u00e1s Andr\u00e1s&nbsp;<\/td><td>01.12.<\/td><\/tr><tr><td>A. Kogar et al., Signatures of exciton condensation in a transition metal dichalcogenide. Science. 358, 1314\u20131317 (2017).<\/td><td>Nemes I. P\u00e9ter<\/td><td>2017.12.15.<\/td><\/tr><tr><td>QPC<\/td><td>Kun P\u00e9ter&nbsp;<\/td><td>2017.12.08.<\/td><\/tr><tr><td>Q. Chen et al., Atomically Flat Zigzag Edges in Monolayer MoS2 by Thermal Annealing. Nano Lett. 17, 5502\u20135507 (2017).<\/td><td>Magda G\u00e1bor<\/td><td>2017.11.17.<\/td><\/tr><tr><td>V. Fatemi, Q. D. Gibson, K. Watanabe, R. J. Cava, P. Jarillo-herrero, Observation of the Quantum Spin Hall Effect up to 100 Kelvin in a Monolayer Crystal. arXiv (2017) (available at <a href=\"https:\/\/arxiv.org\/abs\/1711.03584\">https:\/\/arxiv.org\/abs\/1711.03584<\/a>).<\/td><td>Nemes I. P\u00e9ter<\/td><td>2017.11.17.<\/td><\/tr><tr><td>R. Krishna Kumar et al., Superballistic flow of viscous electron fluid through graphene constrictions. Nat. Phys., 1\u20135 (2017).<\/td><td>Szendr\u0151 M\u00e1rton&nbsp;<\/td><td>2017.11.10.<\/td><\/tr><tr><td>B. Q. Lv et al., Observation of three-component fermions in the topological semimetal molybdenum phosphide. Nature. 546, 627\u2013631 (2017).<\/td><td>S\u00fcle P\u00e9ter<\/td><td>2017.10.27.<\/td><\/tr><tr><td>J. Annett, G. L. W. Cross, Self-assembly of graphene ribbons by spontaneous self-tearing and peeling from a substrate. Nature. 535, 271\u2013275 (2016).<\/td><td>Piszter G\u00e1bor&nbsp;<\/td><td>2017.10.20.<\/td><\/tr><tr><td>J. Judek et al, Statistical analysis of the temperature dependence of the phonon properties in supported CVD graphene,&nbsp;Carbon 124 (2017) 1\u20138.<\/td><td>P\u00e1link\u00e1s Andr\u00e1s&nbsp;<\/td><td>2017.10.13.<\/td><\/tr><\/tbody><\/table><\/figure>\n\n\n\n<figure class=\"wp-block-table alignwide\"><table class=\"has-fixed-layout\"><tbody><tr><td>Graphene Week 2017 besz\u00e1mol\u00f3<\/td><td>Pet\u0151 J\u00e1nos, Kun P\u00e9ter<\/td><td>2017. 10. 06.<\/td><\/tr><tr><td>S. Li et al., The tunnelling spectra of quasi-free-standing graphene monolayer. arXiv (2017) (available at <a href=\"http:\/\/arxiv.org\/abs\/1709.00136\">http:\/\/arxiv.org\/abs\/1709.00136<\/a>).<\/td><td>N. P\u00e9ter<\/td><td>2017. 09. 29.<\/td><\/tr><tr><td>elmaradt<\/td><td>M. G\u00e1bor &nbsp;<\/td><td>2017. 09. 22.<\/td><\/tr><tr><td>Aaron D. Franklin, Nanomaterials in transistors:&nbsp;From high-performance to&nbsp;thin-film applications,&nbsp;Science 349,&nbsp;aab2750 (2015)<\/td><td>P. J\u00e1nos<\/td><td>2017. 09. 15.<\/td><\/tr><tr><td>2D anyag szuperr\u00e1csok, kontinuum modell<\/td><td>Sz. M\u00e1rton<\/td><td>2017. 09. 08.<\/td><\/tr><tr><td>J. Velasco et al., Nanoscale Control of Rewriteable Doping Patterns in Pristine Graphene\/Boron Nitride Heterostructures. Nano Lett. 16, 1620\u20131625 (2016).<\/td><td>N. P\u00e9ter<\/td><td>2017. 08. 25.<\/td><\/tr><tr><td>S. Nadj-Perge et al., Observation of Majorana fermions in ferromagnetic atomic chains on a superconductor. Science. 346, 602\u2013607 (2014)<\/td><td>N. P\u00e9ter<\/td><td>2017. 08. 18.<\/td><\/tr><tr><td>M.K. Blees et. al., Graphene kirigami. Nature 524, 204-207 (2015)<\/td><td>K. P\u00e9ter<\/td><td>2017. 08. 04.<\/td><\/tr><tr><td>K. Kim et al., Tunable moir\u00e9 bands and strong correlations in small-twist-angle bilayer graphene. Proc. Natl. Acad. Sci. 114, 3364\u20133369 (2017).<\/td><td>P. Andr\u00e1s<\/td><td>2017. 07. 28.<\/td><\/tr><tr><td>Y. Cao et al., Quality Heterostructures from Two-Dimensional Crystals Unstable in Air by Their Assembly in Inert Atmosphere. Nano Lett. 15, 4914\u20134921 (2015).<\/td><td>N. P\u00e9ter<\/td><td>2017. 07. 21.<\/td><\/tr><tr><td>S. Tewari, K. M. Bastiaans, M. P. Allan, J. M. van Ruitenbeek, Robust procedure for creating and characterizing the atomic structure of scanning tunneling microscope tips. arXiv (2017) (available at <a href=\"http:\/\/arxiv.org\/abs\/1705.08796\">http:\/\/arxiv.org\/abs\/1705.08796<\/a>).<\/td><td>M. G\u00e1bor<\/td><td>2017. 07. 14.<\/td><\/tr><tr><td>D. Wang et al., Thermally Induced Graphene Rotation on Hexagonal Boron Nitride. Phys. Rev. Lett. 116, 126101 (2016).<\/td><td>K. Peter<\/td><td>2017. 07. 07.<\/td><\/tr><\/tbody><\/table><\/figure>\n\n\n\n<figure class=\"wp-block-table alignwide\"><table class=\"has-fixed-layout\"><tbody><tr><td>C. Guti\u00e9rrez et al., Imaging chiral symmetry breaking from Kekul\u00e9 bond order in graphene. Nat. Phys. 12, 950\u2013958 (2016).<\/td><td>N. Peter<\/td><td>2017. 06. 23.<\/td><\/tr><tr><td>F. Ghahari et al., An on\/off Berry phase switch in circular graphene resonators. Science. 356, 845\u2013849 (2017).<\/td><td>N. Peter<\/td><td>2017. 06. 16.<\/td><\/tr><tr><td>Kim et.al., Van der Waals Heterostructures with High Accuracy Rotational Alignment, Nano Letters 2016 16, 1989\u22121995.<\/td><td>K. Peter<\/td><td>2017. 06. 02.<\/td><\/tr><tr><td>M. Zhao et. al., Large-scale chemical assembly of atomically thin transistors and circuits, Nature Nanotechnology 11, 954\u2013959 (2016)<\/td><td>P. Janos<\/td><td>2017. 05. 26.<\/td><\/tr><tr><td>J. Tetienne et al., Quantum imaging of current flow in graphene. Sci. Adv. 3, e1602429 (2017).<\/td><td>Andras<\/td><td>2017. 05. 19.<\/td><\/tr><tr><td>W. Chen, V. Madhavan, T. Jamneala, M. F. Crommie, Scanning Tunneling Microscopy Observation of an Electronic Superlattice at the Surface of Clean Gold. Phys. Rev. Lett. 80, 1469\u20131472 (1998).<\/td><td>N. Peter<\/td><td>2017. 05. 12<\/td><\/tr><tr><td>L. Kou et al., Robust 2D Topological Insulators in van der Waals Heterostructures. ACS Nano. 8, 10448\u201310454 (2014).<\/td><td>N. Peter<\/td><td>2017. 05. 05<\/td><\/tr><tr><td>Time crystals<\/td><td>M. Geza<\/td><td>2017. 04. 28<\/td><\/tr><tr><td>C. Zhang et al., Probing Critical Point Energies of Transition Metal Dichalcogenides: Surprising Indirect Gap of Single Layer WSe2. Nano Lett. 15, 6494\u20136500 (2015).<\/td><td>N. Peter<\/td><td>2017. 04. 21<\/td><\/tr><\/tbody><\/table><\/figure>\n\n\n\n<p class=\"wp-block-paragraph\"><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Zhao, M. et al. Step geometry-guided growth of rhombohedral graphene. Science 393, 422\u2013427 (2026). Maxime Le Ster 2026.10.08 Rhodes, L. C., Houston, D. C., Armitage, O. R. &amp; Wahl, P. Probing moir\u00e9 electronic structures through quasiparticle interference. Phys. Rev. B. 111, L121403 (2025). S\u00fcle P\u00e9ter 2026.10.01 Naragon, T. H.&nbsp;et al.&nbsp;Symbiotic entrenchment through ecological Catch-22.&nbsp;Cell&nbsp;189, 1228-1244.e24 [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":0,"parent":196,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_monsterinsights_skip_tracking":false,"footnotes":""},"class_list":["post-213","page","type-page","status-publish","hentry"],"guten_post_layout_featured_media_urls":{"full":false,"thumbnail":false,"medium":false,"medium_large":false,"large":false,"1536x1536":false,"2048x2048":false,"trp-custom-language-flag":false,"guten_post_layout_landscape_large":false,"guten_post_layout_portrait_large":false,"guten_post_layout_square_large":false,"guten_post_layout_landscape":false,"guten_post_layout_portrait":false,"guten_post_layout_square":false,"sciencexlite-blog-thumb":false},"_links":{"self":[{"href":"https:\/\/www.nemeslab.com\/hu\/wp-json\/wp\/v2\/pages\/213","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.nemeslab.com\/hu\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/www.nemeslab.com\/hu\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/www.nemeslab.com\/hu\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/www.nemeslab.com\/hu\/wp-json\/wp\/v2\/comments?post=213"}],"version-history":[{"count":154,"href":"https:\/\/www.nemeslab.com\/hu\/wp-json\/wp\/v2\/pages\/213\/revisions"}],"predecessor-version":[{"id":1424,"href":"https:\/\/www.nemeslab.com\/hu\/wp-json\/wp\/v2\/pages\/213\/revisions\/1424"}],"up":[{"embeddable":true,"href":"https:\/\/www.nemeslab.com\/hu\/wp-json\/wp\/v2\/pages\/196"}],"wp:attachment":[{"href":"https:\/\/www.nemeslab.com\/hu\/wp-json\/wp\/v2\/media?parent=213"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}