Eva Y. Andrei

13.4k total citations · 5 hit papers
98 papers, 7.5k citations indexed

About

Eva Y. Andrei is a scholar working on Atomic and Molecular Physics, and Optics, Materials Chemistry and Condensed Matter Physics. According to data from OpenAlex, Eva Y. Andrei has authored 98 papers receiving a total of 7.5k indexed citations (citations by other indexed papers that have themselves been cited), including 71 papers in Atomic and Molecular Physics, and Optics, 52 papers in Materials Chemistry and 29 papers in Condensed Matter Physics. Recurrent topics in Eva Y. Andrei's work include Quantum and electron transport phenomena (48 papers), Graphene research and applications (44 papers) and Physics of Superconductivity and Magnetism (23 papers). Eva Y. Andrei is often cited by papers focused on Quantum and electron transport phenomena (48 papers), Graphene research and applications (44 papers) and Physics of Superconductivity and Magnetism (23 papers). Eva Y. Andrei collaborates with scholars based in United States, Japan and France. Eva Y. Andrei's co-authors include Guohong Li, Adina Luican, Xu Du, Ivan Skachko, Alfonso Reina, Jian Feng Kong, Fabian Duerr, Thomas W. Clark, Takashi Taniguchi and Kenji Watanabe and has published in prestigious journals such as Nature, Science and Proceedings of the National Academy of Sciences.

In The Last Decade

Eva Y. Andrei

92 papers receiving 7.3k citations

Hit Papers

Observation of Van Hove singularities in twisted graphene... 2009 2026 2014 2020 2009 2009 2011 2021 2021 250 500 750

Peers — A (Enhanced Table)

Peers by citation overlap · career bar shows stage (early→late) cites · hero ref

Name h Career Trend Papers Cites
Eva Y. Andrei United States 39 5.2k 4.6k 1.6k 1.4k 772 98 7.5k
Javier Sanchez-Yamagishi United States 15 6.3k 1.2× 4.0k 0.9× 824 0.5× 1.6k 1.1× 885 1.1× 24 7.5k
L. Brey Spain 43 4.5k 0.9× 5.1k 1.1× 1.7k 1.1× 1.7k 1.2× 656 0.8× 155 7.1k
Tim O. Wehling Germany 48 6.2k 1.2× 4.4k 1.0× 1.5k 0.9× 2.6k 1.8× 826 1.1× 134 8.4k
Mikito Koshino Japan 47 8.5k 1.6× 6.4k 1.4× 755 0.5× 1.6k 1.1× 983 1.3× 154 9.9k
J. M. B. Lopes dos Santos Portugal 20 5.0k 1.0× 3.6k 0.8× 538 0.3× 1.2k 0.8× 758 1.0× 49 5.8k
Valla Fatemi United States 17 8.1k 1.6× 6.4k 1.4× 2.4k 1.4× 2.0k 1.4× 971 1.3× 36 11.1k
J. H. Smet Germany 53 6.1k 1.2× 6.1k 1.3× 1.7k 1.0× 4.2k 2.9× 1.2k 1.6× 174 10.4k
Dmitri K. Efetov Spain 30 4.2k 0.8× 3.6k 0.8× 882 0.5× 1.6k 1.1× 1.1k 1.4× 64 6.2k
J. J. Palacios Spain 41 4.1k 0.8× 3.9k 0.8× 927 0.6× 3.0k 2.1× 644 0.8× 160 6.5k
Biao Lian United States 35 3.4k 0.7× 3.9k 0.8× 1.9k 1.1× 987 0.7× 300 0.4× 78 5.5k

Countries citing papers authored by Eva Y. Andrei

Since Specialization
Citations

This map shows the geographic impact of Eva Y. Andrei's research. It shows the number of citations coming from papers published by authors working in each country. You can also color the map by specialization and compare the number of citations received by Eva Y. Andrei with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Eva Y. Andrei more than expected).

Fields of papers citing papers by Eva Y. Andrei

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Eva Y. Andrei. Nodes represent research fields, and links connect fields that are likely to share authors. Colored nodes show fields that tend to cite the papers produced by Eva Y. Andrei. The network helps show where Eva Y. Andrei may publish in the future.

Co-authorship network of co-authors of Eva Y. Andrei

This figure shows the co-authorship network connecting the top 25 collaborators of Eva Y. Andrei. A scholar is included among the top collaborators of Eva Y. Andrei based on the total number of citations received by their joint publications. Widths of edges represent the number of papers authors have co-authored together. Node borders signify the number of papers an author published with Eva Y. Andrei. Eva Y. Andrei is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

20 of 20 papers shown
1.
Zhou, Yun, Ashwani Kumar, Eva Y. Andrei, et al.. (2026). Protonic nickelate device networks for spatiotemporal neuromorphic computing. Nature Nanotechnology.
2.
Lai, Xinyuan, et al.. (2025). Moiré periodic and quasiperiodic crystals in heterostructures of twisted bilayer graphene on hexagonal boron nitride. Nature Materials. 24(7). 1019–1026. 3 indexed citations
3.
Won, Choongjae, et al.. (2024). Proximity induced charge density wave in a graphene/1T-TaS2 heterostructure. Nature Communications. 15(1). 8056–8056. 5 indexed citations
4.
Kugler, Fabian B., et al.. (2024). Vacancy-Induced Tunable Kondo Effect in Twisted Bilayer Graphene. Physical Review Letters. 133(12). 126503–126503. 1 indexed citations
5.
Andrei, Eva Y., et al.. (2024). Quick-connect scanning tunneling microscope head with nested piezoelectric coarse walkers. Review of Scientific Instruments. 95(7). 2 indexed citations
6.
Bruevich, Vladimir V., Sylvie Rangan, Zhenyuan Zhang, et al.. (2022). Intrinsic (Trap‐Free) Transistors Based on Epitaxial Single‐Crystal Perovskites. Advanced Materials. 34(43). e2205055–e2205055. 26 indexed citations
7.
Li, Guohong, et al.. (2022). Moiré Potential, Lattice Relaxation, and Layer Polarization in Marginally Twisted MoS2 Bilayers. Nano Letters. 23(1). 73–81. 29 indexed citations
8.
Andrei, Eva Y., Dmitri K. Efetov, Pablo Jarillo‐Herrero, et al.. (2021). The marvels of moiré materials. Nature Reviews Materials. 6(3). 201–206. 407 indexed citations breakdown →
9.
Li, Guohong, et al.. (2021). Cryogen-free Ultra-High Vacuum Low Temperature High Field Proximal Probe System for the Exploration of Low Dimensional Materials. Bulletin of the American Physical Society.
10.
Wu, Shuang, Zhenyuan Zhang, Kenji Watanabe, Takashi Taniguchi, & Eva Y. Andrei. (2021). Chern insulators, van Hove singularities and topological flat bands in magic-angle twisted bilayer graphene. Nature Materials. 20(4). 488–494. 259 indexed citations breakdown →
11.
Jiang, Yuhang, Jinhai Mao, Xinyuan Lai, et al.. (2019). Evidence of charge-ordering and broken rotational symmetry in magic angle twisted bilayer graphene. arXiv (Cornell University). 4 indexed citations
12.
Andrei, Eva Y., et al.. (2018). CVD Growth and Dry Transfer of Large High Quality Graphene Crystals. Bulletin of the American Physical Society. 2018.
13.
Jiang, Yuhang, Guohong Li, Guang‐Yu Guo, et al.. (2018). Inducing Kondo screening of vacancy magnetic moments in graphene with gating and local curvature. Nature Communications. 9(1). 2349–2349. 44 indexed citations
14.
Du, Xu, Ivan Skachko, Fabian Duerr, Adina Luican, & Eva Y. Andrei. (2009). Fractional quantum Hall effect and insulating phase of Dirac electrons in graphene. Nature. 462(7270). 192–195. 687 indexed citations breakdown →
15.
Li, Guohong, Adina Luican, & Eva Y. Andrei. (2009). Scanning Tunneling Spectroscopy of Graphene on Graphite. Physical Review Letters. 102(17). 176804–176804. 386 indexed citations
16.
Andrei, Virgil, et al.. (2007). Electron spectroscopy studies of the diamond like carbonic thin films. Journal of Optoelectronics and Advanced Materials. 9(7). 2288–2290. 1 indexed citations
17.
Xiao, Zhili, et al.. (2004). Observation of the Vortex Lattice Spinodal inNbSe2. Physical Review Letters. 92(22). 227004–227004. 39 indexed citations
18.
Valla, T., А. В. Федоров, P. D. Johnson, et al.. (2004). Quasiparticle Spectra, Charge-Density Waves, Superconductivity, and Electron-Phonon Coupling in2HNbSe2. Physical Review Letters. 92(8). 86401–86401. 167 indexed citations
19.
Xiao, Zhili, Eva Y. Andrei, P. Shuk, & M. Greenblatt. (2000). Equilibration and Dynamic Phase Transitions of a Driven Vortex Lattice. Physical Review Letters. 85(15). 3265–3268. 69 indexed citations
20.
Andrei, Eva Y.. (1997). Two-dimensional electron systems on helium and other cryogenic substrates. CERN Document Server (European Organization for Nuclear Research). 68 indexed citations

Rankless uses publication and citation data sourced from OpenAlex, an open and comprehensive bibliographic database. While OpenAlex provides broad and valuable coverage of the global research landscape, it—like all bibliographic datasets—has inherent limitations. These include incomplete records, variations in author disambiguation, differences in journal indexing, and delays in data updates. As a result, some metrics and network relationships displayed in Rankless may not fully capture the entirety of a scholar's output or impact.

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