R. L. Stamps

10.8k total citations · 4 hit papers
254 papers, 8.0k citations indexed

About

R. L. Stamps is a scholar working on Atomic and Molecular Physics, and Optics, Condensed Matter Physics and Electronic, Optical and Magnetic Materials. According to data from OpenAlex, R. L. Stamps has authored 254 papers receiving a total of 8.0k indexed citations (citations by other indexed papers that have themselves been cited), including 223 papers in Atomic and Molecular Physics, and Optics, 151 papers in Condensed Matter Physics and 116 papers in Electronic, Optical and Magnetic Materials. Recurrent topics in R. L. Stamps's work include Magnetic properties of thin films (190 papers), Theoretical and Computational Physics (106 papers) and Magnetic Properties and Applications (80 papers). R. L. Stamps is often cited by papers focused on Magnetic properties of thin films (190 papers), Theoretical and Computational Physics (106 papers) and Magnetic Properties and Applications (80 papers). R. L. Stamps collaborates with scholars based in Australia, United Kingdom and United States. R. L. Stamps's co-authors include R. E. Camley, B. Hillebrands, Mikhail Kostylev, Joo-Von Kim, C. H. Marrows, Laura J. Heyderman, T. Schneider, A. A. Serga, B. Leven and Paolo Politi and has published in prestigious journals such as Physical Review Letters, Nature Communications and Nature Materials.

In The Last Decade

R. L. Stamps

248 papers receiving 7.8k citations

Hit Papers

Mechanisms for exchange bias 2000 2026 2008 2017 2000 2008 2007 2019 200 400 600

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
R. L. Stamps Australia 41 6.5k 3.9k 3.7k 1.6k 1.3k 254 8.0k
P. Wyder France 42 5.9k 0.9× 4.0k 1.0× 3.1k 0.8× 2.2k 1.4× 2.2k 1.7× 443 9.2k
U. Rößler Germany 57 8.6k 1.3× 5.2k 1.3× 5.0k 1.3× 2.3k 1.4× 3.4k 2.6× 313 12.3k
R. C. Dynes United States 47 5.2k 0.8× 8.3k 2.1× 2.9k 0.8× 1.6k 1.0× 2.8k 2.2× 184 11.5k
D. Mailly France 46 6.0k 0.9× 3.0k 0.8× 2.1k 0.6× 1.6k 1.0× 2.2k 1.7× 199 8.2k
R. Georgii Germany 24 5.5k 0.8× 3.6k 0.9× 3.2k 0.8× 657 0.4× 1.0k 0.8× 100 6.8k
André Kubetzka Germany 35 6.5k 1.0× 3.6k 0.9× 2.3k 0.6× 1.0k 0.6× 1.2k 0.9× 85 7.1k
Olav Hellwig United States 38 4.2k 0.6× 1.9k 0.5× 2.3k 0.6× 970 0.6× 1.1k 0.9× 195 5.6k
J. Ferré France 42 5.5k 0.8× 3.2k 0.8× 3.1k 0.8× 1.7k 1.1× 1.9k 1.5× 237 7.4k
Andrew D. Kent United States 38 4.6k 0.7× 2.0k 0.5× 2.7k 0.7× 2.0k 1.3× 1.6k 1.3× 166 6.1k
Y. Nakatani Japan 35 5.2k 0.8× 2.2k 0.6× 2.8k 0.8× 1.6k 1.0× 1.8k 1.4× 190 6.2k

Countries citing papers authored by R. L. Stamps

Since Specialization
Citations

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

Fields of papers citing papers by R. L. Stamps

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by R. L. Stamps. 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 R. L. Stamps. The network helps show where R. L. Stamps may publish in the future.

Co-authorship network of co-authors of R. L. Stamps

This figure shows the co-authorship network connecting the top 25 collaborators of R. L. Stamps. A scholar is included among the top collaborators of R. L. Stamps 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 R. L. Stamps. R. L. Stamps 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.
Lindner, J., et al.. (2025). Hyperbolic optics in antiferromagnets with tilted anisotropy. Optics & Laser Technology. 184. 112440–112440.
2.
Stamps, R. L., et al.. (2023). Continuous psychophysics for two-variable experiments; A new “Bayesian participant” approach. i-Perception. 14(6). 1253995368–1253995368. 2 indexed citations
3.
Stamps, R. L., et al.. (2023). Target motion misjudgments reflect a misperception of the background; revealed using continuous psychophysics. i-Perception. 14(6). 1253995367–1253995367. 2 indexed citations
4.
Macêdo, Rair, et al.. (2021). Electromagnetic Approach to Cavity Spintronics. Physical Review Applied. 15(2). 14 indexed citations
5.
Stamps, R. L., et al.. (2021). Configurable Artificial Spin Ice with Site-Specific Local Magnetic Fields. Physical Review Letters. 126(1). 17203–17203. 9 indexed citations
6.
Paterson, Gary W., et al.. (2020). Tuning magnetic order with geometry: Thermalization and defects in two-dimensional artificial spin ices. Physical review. B.. 101(14). 17 indexed citations
7.
Proskurin, Igor, Rair Macêdo, & R. L. Stamps. (2019). Microscopic origin of level attraction for a coupled magnon-photon system in a microwave cavity. New Journal of Physics. 21(9). 95003–95003. 15 indexed citations
8.
Paterson, Gary W., Yue Li, Rair Macêdo, et al.. (2019). Heisenberg pseudo-exchange and emergent anisotropies in field-driven pinwheel artificial spin ice. Physical review. B.. 100(17). 12 indexed citations
9.
Wyss, Marcus, Sebastian Gliga, Denis Vasyukov, et al.. (2019). Stray-Field Imaging of a Chiral Artificial Spin Ice during Magnetization Reversal. ACS Nano. 13(12). 13910–13916. 16 indexed citations
10.
Li, Yue, Gary W. Paterson, Sophie A. Morley, et al.. (2018). Superferromagnetism and Domain-Wall Topologies in Artificial “Pinwheel” Spin Ice. ACS Nano. 29 indexed citations
11.
Gonçalves, F. J. T., Gary W. Paterson, D. McGrouther, et al.. (2017). Probing microwave fields and enabling in-situ experiments in a transmission electron microscope. Scientific Reports. 7(1). 11064–11064. 6 indexed citations
12.
Stamps, R. L., et al.. (2012). Faraday Rotation for Superpositions of Electron Vortex States. arXiv (Cornell University). 1 indexed citations
13.
Budrikis, Zoe, Jason P. Morgan, Johan Åkerman, et al.. (2012). Disorder Strength and Field-Driven Ground State Domain Formation in Artificial Spin Ice: Experiment, Simulation, and Theory. Physical Review Letters. 109(3). 37203–37203. 71 indexed citations
14.
Fuller, Rebecca O., George A. Koutsantonis, & R. L. Stamps. (2009). An experimental investigation of dynamic behavior in FePt systems. Journal of Physics Condensed Matter. 21(12). 124203–124203. 2 indexed citations
15.
Kostylev, Mikhail, G. Gubbiotti, G. Carlotti, et al.. (2008). Propagating volume and localized spin wave modes on a lattice of circular magnetic antidots. Journal of Applied Physics. 103(7). 50 indexed citations
16.
Bauer, M., A. Mougin, J. P. Jamet, et al.. (2005). Deroughening of Domain Wall Pairs by Dipolar Repulsion. Physical Review Letters. 94(20). 207211–207211. 36 indexed citations
17.
Demand, M., M. Hehn, R. L. Stamps, C. Mény, & K. Ounadjela. (2002). Structure and magnetic properties of epitaxial cobalt islands. The European Physical Journal B. 25(2). 167–176. 1 indexed citations
18.
Stamps, R. L., et al.. (1996). Spin-wave hybridization and magnetic anisotropies in a thick bcc cobalt film. Physical review. B, Condensed matter. 54(17). 11903–11906. 6 indexed citations
19.
Camley, R. E. & R. L. Stamps. (1993). Magnetic multilayers: spin configurations, excitations and giant magnetoresistance. Journal of Physics Condensed Matter. 5(23). 3727–3786. 191 indexed citations
20.
Faßbender, J., R. L. Stamps, R. E. Camley, et al.. (1993). Oscillatory interlayer exchange coupling of Co/Ru and permalloy / Ru multilayers investigated by Brillouin light scattering. Journal of Magnetism and Magnetic Materials. 121(1-3). 270–274. 4 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.

Explore authors with similar magnitude of impact

Rankless by CCL
2026