H. Berger

26.5k total citations · 5 hit papers
503 papers, 21.0k citations indexed

About

H. Berger is a scholar working on Electronic, Optical and Magnetic Materials, Condensed Matter Physics and Materials Chemistry. According to data from OpenAlex, H. Berger has authored 503 papers receiving a total of 21.0k indexed citations (citations by other indexed papers that have themselves been cited), including 295 papers in Electronic, Optical and Magnetic Materials, 293 papers in Condensed Matter Physics and 236 papers in Materials Chemistry. Recurrent topics in H. Berger's work include Advanced Condensed Matter Physics (200 papers), Physics of Superconductivity and Magnetism (182 papers) and Magnetic and transport properties of perovskites and related materials (121 papers). H. Berger is often cited by papers focused on Advanced Condensed Matter Physics (200 papers), Physics of Superconductivity and Magnetism (182 papers) and Magnetic and transport properties of perovskites and related materials (121 papers). H. Berger collaborates with scholars based in Switzerland, Germany and United States. H. Berger's co-authors include L. Forró, Lászlø Forró, Xiaoxiang Xi, Alberto F. Morpurgo, Jie Shan, Kin Fai Mak, M. Grioni, Changgu Lee, Robert W. Carpick and James Hone and has published in prestigious journals such as Nature, Science and Proceedings of the National Academy of Sciences.

In The Last Decade

H. Berger

497 papers receiving 20.6k citations

Hit Papers

Frictional Characteristic... 1993 2026 2004 2015 2010 2015 2008 2015 1993 500 1000 1.5k

Author Peers

Peers are selected by citation overlap in the author's most active subfields. citations · hero ref

Author Last Decade Papers Cites
H. Berger 12.0k 8.4k 8.0k 7.0k 4.3k 503 21.0k
Sergey Y. Savrasov 14.4k 1.2× 8.2k 1.0× 9.4k 1.2× 8.8k 1.2× 4.2k 1.0× 105 24.7k
Arunava Gupta 7.9k 0.7× 6.6k 0.8× 6.3k 0.8× 3.4k 0.5× 4.1k 1.0× 362 15.6k
O. Jepsen 9.7k 0.8× 8.0k 1.0× 9.8k 1.2× 6.4k 0.9× 3.1k 0.7× 178 21.2k
Arun Bansil 16.2k 1.3× 4.7k 0.6× 10.3k 1.3× 18.5k 2.6× 3.0k 0.7× 447 26.8k
В. И. Анисимов 13.6k 1.1× 14.3k 1.7× 13.3k 1.7× 5.4k 0.8× 4.8k 1.1× 302 27.8k
A. I. Lichtenstein 7.4k 0.6× 6.1k 0.7× 6.9k 0.9× 6.5k 0.9× 2.9k 0.7× 190 15.6k
L. H. Tjeng 8.0k 0.7× 7.8k 0.9× 6.8k 0.8× 2.7k 0.4× 3.2k 0.8× 308 15.7k
S. L. Dudarev 16.1k 1.3× 4.9k 0.6× 3.5k 0.4× 3.1k 0.4× 4.3k 1.0× 268 22.5k
Theo Siegrist 13.0k 1.1× 8.3k 1.0× 8.4k 1.0× 3.1k 0.4× 10.9k 2.5× 358 25.2k
Jeroen van den Brink 8.9k 0.7× 8.6k 1.0× 10.2k 1.3× 6.9k 1.0× 3.5k 0.8× 381 20.3k

Countries citing papers authored by H. Berger

Since Specialization
Citations

This map shows the geographic impact of H. Berger'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 H. Berger with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites H. Berger more than expected).

Fields of papers citing papers by H. Berger

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by H. Berger. 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 H. Berger. The network helps show where H. Berger may publish in the future.

Co-authorship network of co-authors of H. Berger

This figure shows the co-authorship network connecting the top 25 collaborators of H. Berger. A scholar is included among the top collaborators of H. Berger 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 H. Berger. H. Berger 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.
Kundu, Asish K., Anil Rajapitamahuni, E. Vescovo, et al.. (2024). Charge density waves and the effects of uniaxial strain on the electronic structure of 2H-NbSe2. Communications Materials. 5(1). 1 indexed citations
2.
Hildebrand, B., et al.. (2023). Observation of the metallic mosaic phase in 1TTaS2 at equilibrium. Physical Review Materials. 7(6). 7 indexed citations
3.
Rocquefelte, Xavier, Mirta Herak, Atsushi Miyake, et al.. (2023). Coherent description of the magnetic properties of SeCuO3 versus temperature and magnetic field. Physical review. B.. 107(5). 1 indexed citations
4.
Watanabe, Kenji, et al.. (2023). Origin of Subgap States in Normal-Insulator-Superconductor van der Waals Heterostructures. Nano Letters. 23(7). 2454–2459. 2 indexed citations
5.
Batistić, I., Ana Smontara, Jaćim Jaćimović, et al.. (2023). Electronic transport and magnetism in the alternating stack of metallic and highly frustrated magnetic layers in Co1/3NbS2. Physical review. B.. 107(23). 6 indexed citations
6.
Gourgout, Adrien, Maxime Leroux, R. P. S. M. Lobo, et al.. (2022). Magnetic freeze-out and anomalous Hall effect in ZrTe5. npj Quantum Materials. 7(1). 20 indexed citations
7.
Kang, Kaifei, H. Berger, Kenji Watanabe, et al.. (2022). van der Waals π Josephson Junctions. Nano Letters. 22(13). 5510–5515. 20 indexed citations
8.
Utsumi, Yuki, Wojciech Tabiś, J. Kołodziej, et al.. (2022). Role of intercalated cobalt in the electronic structure of Co1/3NbS2. Physical review. B.. 105(15). 11 indexed citations
9.
Crepaldi, A., Michele Puppin, Daniel Gosálbez-Martínez, et al.. (2022). Optically induced changes in the band structure of the Weyl charge-density-wave compound (TaSe4)2I. Journal of Physics Materials. 5(4). 44006–44006. 5 indexed citations
10.
Gatti, G., Daniel Gosálbez-Martínez, Quansheng Wu, et al.. (2021). Origin of large magnetoresistance in the topological nonsymmorphic semimetal TaSe3. Physical review. B.. 104(15). 5 indexed citations
11.
Gatti, G., Daniel Gosálbez-Martínez, Silvan Roth, et al.. (2021). Hidden bulk and surface effects in the spin polarization of the nodal-line semimetal ZrSiTe. Communications Physics. 4(1). 7 indexed citations
12.
Aqeel, Aisha, T. Taniguchi, H. Berger, et al.. (2021). Microwave Spectroscopy of the Low-Temperature Skyrmion State in Cu2OSeO3. Physical Review Letters. 126(1). 17202–17202. 30 indexed citations
13.
Martino, Edoardo, A. Pisoni, Alla Arakcheeva, et al.. (2020). Preferential out-of-plane conduction and quasi-one-dimensional electronic states in layered 1T-TaS2. npj 2D Materials and Applications. 4(1). 39 indexed citations
14.
Gatti, G., A. Crepaldi, Michele Puppin, et al.. (2020). Light-Induced Renormalization of the Dirac Quasiparticles in the Nodal-Line Semimetal ZrSiSe. Physical Review Letters. 125(7). 76401–76401. 32 indexed citations
15.
Еремеев, С. В., M. Papagno, Oreste De Luca, et al.. (2020). Insight into the electronic structure of semiconducting εGaSe and εInSe. Physical Review Materials. 4(8). 7 indexed citations
16.
Pregelj, M., A. Zorko, M. Gomilšek, et al.. (2019). Elementary excitation in the spin-stripe phase in quantum chains. npj Quantum Materials. 4(1). 7 indexed citations
17.
Wu, Hung‐Cheng, Dirk Мenzel, Chien‐Hsiu Lee, et al.. (2019). Antiferroelectric antiferromagnetic type-I multiferroic Cu9O2(SeO3)4Cl6. Physical review. B.. 100(24). 10 indexed citations
18.
Baldini, Edoardo, Letizia Chiodo, Adriel Domínguez, et al.. (2017). Strongly bound excitons in anatase TiO<sub>2</sub> single crystals and nanoparticles. MPG.PuRe (Max Planck Society). 159 indexed citations
19.
Wang, Chin‐Wei, Yang Zhao, Wen‐Hsien Li, et al.. (2017). Complex magnetic incommensurability and electronic charge transfer through the ferroelectric transition in multiferroic Co3TeO6. Scientific Reports. 7(1). 6437–6437. 11 indexed citations
20.
Almeida, J., I. Vobornik, H. Berger, et al.. (1996). Spectromicroscopy study of lateral band bending of the Ge-GaSe heterostructure. Helvetica physica acta. 69. 35–36. 1 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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