S. Gerischer

1.0k total citations · 1 hit paper
23 papers, 763 citations indexed

About

S. Gerischer is a scholar working on Condensed Matter Physics, Electronic, Optical and Magnetic Materials and Materials Chemistry. According to data from OpenAlex, S. Gerischer has authored 23 papers receiving a total of 763 indexed citations (citations by other indexed papers that have themselves been cited), including 20 papers in Condensed Matter Physics, 15 papers in Electronic, Optical and Magnetic Materials and 5 papers in Materials Chemistry. Recurrent topics in S. Gerischer's work include Advanced Condensed Matter Physics (15 papers), Physics of Superconductivity and Magnetism (9 papers) and Magnetic and transport properties of perovskites and related materials (5 papers). S. Gerischer is often cited by papers focused on Advanced Condensed Matter Physics (15 papers), Physics of Superconductivity and Magnetism (9 papers) and Magnetic and transport properties of perovskites and related materials (5 papers). S. Gerischer collaborates with scholars based in Germany, Japan and Switzerland. S. Gerischer's co-authors include K. C. Rule, Klaus H. Kiefer, D. M. Tennant, J.-U. Hoffmann, Bastian Klemke, Claudio Castelnovo, Roderich Moessner, Robin Perry, D. J. P. Morris and S. A. Grigera and has published in prestigious journals such as Science, Physical Review Letters and Physical Review B.

In The Last Decade

S. Gerischer

21 papers receiving 756 citations

Hit Papers

Dirac Strings and Magnetic Monopoles in the Spin Ice Dy 2... 2009 2026 2014 2020 2009 100 200 300 400

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
S. Gerischer Germany 11 639 446 186 169 61 23 763
Z.X. Zhao China 15 713 1.1× 454 1.0× 184 1.0× 113 0.7× 53 0.9× 65 812
H. J. Kang United States 19 1.4k 2.1× 1.1k 2.5× 211 1.1× 108 0.6× 45 0.7× 37 1.5k
T. G. Perring United Kingdom 8 989 1.5× 615 1.4× 282 1.5× 38 0.2× 67 1.1× 9 1.0k
M. Samsel–Czekała Poland 14 404 0.6× 293 0.7× 118 0.6× 160 0.9× 40 0.7× 64 589
Pegor Aynajian United States 13 1.1k 1.7× 763 1.7× 339 1.8× 171 1.0× 53 0.9× 21 1.2k
D. McK. Paul United Kingdom 19 1.0k 1.6× 688 1.5× 301 1.6× 121 0.7× 74 1.2× 59 1.2k
H. Goka Japan 8 1.1k 1.7× 747 1.7× 203 1.1× 78 0.5× 74 1.2× 17 1.2k
B. Dalla Piazza Switzerland 12 563 0.9× 330 0.7× 192 1.0× 85 0.5× 45 0.7× 24 668
C. R. Hunt United States 7 457 0.7× 251 0.6× 360 1.9× 91 0.5× 38 0.6× 12 619
J. Porras Germany 16 1.1k 1.8× 742 1.7× 318 1.7× 161 1.0× 82 1.3× 35 1.3k

Countries citing papers authored by S. Gerischer

Since Specialization
Citations

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

Fields of papers citing papers by S. Gerischer

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of S. Gerischer

This figure shows the co-authorship network connecting the top 25 collaborators of S. Gerischer. A scholar is included among the top collaborators of S. Gerischer 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 S. Gerischer. S. Gerischer 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.
Kojda, Danny, Bastian Klemke, S. Gerischer, et al.. (2023). Advancing the precision of thermal Hall measurements for novel materials research. Materials & Design. 237. 112595–112595.
2.
Biffin, Alun, Maciej Bartkowiak, O. Prokhnenko, et al.. (2022). Investigating field-induced magnetic order in Han purple by neutron scattering up to 25.9 T. Physical review. B.. 106(10). 1 indexed citations
3.
Prokeš, K., Maciej Bartkowiak, Oleg Rivin, et al.. (2017). Magnetic structure in a U(Ru0.92Rh0.08)2Si2 single crystal studied by neutron diffraction in static magnetic fields up to 24 T. Physical review. B.. 96(12). 7 indexed citations
4.
Toft-Petersen, Rasmus, D. L. Quintero-Castro, Siqin Meng, et al.. (2017). MultiFLEXX - The new multi-analyzer at the cold triple-axis spectrometer FLEXX. Scientific Reports. 7(1). 13637–13637. 11 indexed citations
5.
Ehmler, H., et al.. (2016). The Quench Detection System of the High-Field Magnet at Helmholtz-Zentrum Berlin. IEEE Transactions on Applied Superconductivity. 26(3). 1–4. 1 indexed citations
6.
Mitsuda, Setsuo, Taro Nakajima, Koji Shibata, et al.. (2016). Activation of frozen ferroelectric domain wall by magnetic field sweeping in multiferroicCuFeO2. Physical review. B.. 93(17). 6 indexed citations
7.
Wulf, E., D. Hüvonen, Rico Schönemann, et al.. (2015). Critical exponents and intrinsic broadening of the field-induced transition inNiCl2·4SC(NH2)2. Physical Review B. 91(1). 14 indexed citations
8.
9.
Penc, B., S. Gerischer, A. Hoser, & A. Szytuła. (2011). Magnetic structure of TmCu2Ge2. Journal of Magnetism and Magnetic Materials. 324(5). 657–659. 3 indexed citations
10.
Rule, K. C., D. M. Tennant, Jean-Sébastien Caux, et al.. (2011). Dynamics of azurite Cu3(CO3)2(OH)2in a magnetic field as determined by neutron scattering. Physical Review B. 84(18). 16 indexed citations
11.
Gondek, Ł., B. Penc, D. Kaczorowski, et al.. (2010). Magnetic and thermodynamic properties of NdT2Ge2 (T=Pd, Ag) compounds. Journal of Solid State Chemistry. 183(4). 789–794. 1 indexed citations
12.
Maťaš, S., Esther Dudzik, R. Feyerherm, et al.. (2010). Neutron diffraction study on the two-dimensional Ising systemKEr(MoO4)2. Physical Review B. 82(18). 7 indexed citations
13.
Rule, K. C., G. Ehlers, J. S. Gardner, et al.. (2009). Neutron scattering investigations of the partially ordered pyrochlore Tb2Sn2O7. Journal of Physics Condensed Matter. 21(48). 486005–486005. 22 indexed citations
14.
Kofu, Maiko, Hiroaki Ueda, Hiroyuki Nojiri, et al.. (2009). Magnetic-Field Induced Phase Transitions in a Weakly Coupleds=1/2Quantum Spin Dimer SystemBa3Cr2O8. Physical Review Letters. 102(17). 177204–177204. 40 indexed citations
15.
Morris, D. J. P., D. M. Tennant, S. A. Grigera, et al.. (2009). Dirac Strings and Magnetic Monopoles in the Spin Ice Dy 2 Ti 2 O 7. Science. 326(5951). 411–414. 427 indexed citations breakdown →
16.
Baran, S., Ł. Gondek, A. Szytuła, et al.. (2009). Low temperature thermodynamical properties of ErCu2Si2. Journal of Magnetism and Magnetic Materials. 322(1). 12–18. 5 indexed citations
18.
Kimber, Simon A. J., D. N. Argyriou, Fabiano Yokaichiya, et al.. (2008). Magnetic ordering and negative thermal expansion in PrFeAsO. Physical Review B. 78(14). 80 indexed citations
19.
Fujisawa, Masashi, Toshio Ono, Hidekazu Tanaka, et al.. (2006). Drastic Change of Magnetic Phase Diagram in Doped Quantum Antiferromagnet TlCu_ Mg_xCl_3 (Condensed Matter: Electronic Structure, Electrical, Magnetic and Optical Properties). Journal of the Physical Society of Japan. 75(3).
20.
Fujisawa, Masashi, Toshio Ono, Hidekazu Tanaka, et al.. (2006). Drastic Change of Magnetic Phase Diagram in Doped Quantum Antiferromagnet TlCu1-xMgxCl3. Journal of the Physical Society of Japan. 75(3). 33702–33702. 11 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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