K. W. Plumb

2.6k total citations · 3 hit papers
29 papers, 2.0k citations indexed

About

K. W. Plumb is a scholar working on Condensed Matter Physics, Electronic, Optical and Magnetic Materials and Electrical and Electronic Engineering. According to data from OpenAlex, K. W. Plumb has authored 29 papers receiving a total of 2.0k indexed citations (citations by other indexed papers that have themselves been cited), including 25 papers in Condensed Matter Physics, 14 papers in Electronic, Optical and Magnetic Materials and 8 papers in Electrical and Electronic Engineering. Recurrent topics in K. W. Plumb's work include Advanced Condensed Matter Physics (25 papers), Physics of Superconductivity and Magnetism (17 papers) and Magnetic and transport properties of perovskites and related materials (8 papers). K. W. Plumb is often cited by papers focused on Advanced Condensed Matter Physics (25 papers), Physics of Superconductivity and Magnetism (17 papers) and Magnetic and transport properties of perovskites and related materials (8 papers). K. W. Plumb collaborates with scholars based in United States, Canada and Germany. K. W. Plumb's co-authors include Young‐June Kim, Luke J. Sandilands, Kenneth S. Burch, J. P. Clancy, Hae‐Young Kee, Yao Tian, Yongfeng Hu, Yiming Qiu, Jennifer Sears and Yang Zhao and has published in prestigious journals such as Physical Review Letters, Nature Communications and SHILAP Revista de lepidopterología.

In The Last Decade

K. W. Plumb

27 papers receiving 2.0k citations

Hit Papers

α−RuCl3: A spin-orbit assisted Mott insulator on a honeyc... 2014 2026 2018 2022 2014 2015 2015 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
K. W. Plumb United States 14 1.8k 1.0k 449 425 307 29 2.0k
Luke J. Sandilands Canada 16 1.4k 0.8× 807 0.8× 411 0.9× 463 1.1× 451 1.5× 24 1.7k
S. J. Moon South Korea 24 2.5k 1.4× 2.2k 2.1× 297 0.7× 400 0.9× 1.1k 3.5× 59 3.0k
N. J. C. Ingle Canada 20 1.2k 0.7× 903 0.9× 111 0.2× 331 0.8× 366 1.2× 36 1.5k
Seung-Hwan Do South Korea 19 1.7k 1.0× 1.1k 1.0× 452 1.0× 409 1.0× 259 0.8× 54 1.9k
A. Bombardi United Kingdom 25 1.4k 0.8× 1.4k 1.3× 180 0.4× 303 0.7× 662 2.2× 71 2.0k
Soham Manni United States 14 1.4k 0.8× 1.1k 1.0× 449 1.0× 560 1.3× 776 2.5× 22 2.1k
I. Batistić Croatia 19 863 0.5× 674 0.6× 288 0.6× 541 1.3× 276 0.9× 61 1.4k
Masayuki Ochi Japan 21 796 0.4× 715 0.7× 265 0.6× 1.1k 2.6× 1.2k 3.8× 82 2.0k
A. T. M. N. Islam Germany 19 999 0.6× 655 0.6× 76 0.2× 327 0.8× 230 0.7× 70 1.2k
W. Schmidt Germany 16 845 0.5× 910 0.9× 77 0.2× 228 0.5× 325 1.1× 68 1.2k

Countries citing papers authored by K. W. Plumb

Since Specialization
Citations

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

Fields of papers citing papers by K. W. Plumb

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by K. W. Plumb. 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 K. W. Plumb. The network helps show where K. W. Plumb may publish in the future.

Co-authorship network of co-authors of K. W. Plumb

This figure shows the co-authorship network connecting the top 25 collaborators of K. W. Plumb. A scholar is included among the top collaborators of K. W. Plumb 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 K. W. Plumb. K. W. Plumb 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.
Torre, A. de la, B. Campbell, Patrick M. Vora, et al.. (2025). Dynamic phase transition in 1T-TaS2 via a thermal quench. Nature Physics. 21(8). 1267–1274.
2.
Plumb, K. W., M. B. Stone, Barry Winn, et al.. (2025). Continuum of magnetic excitations in the Kitaev honeycomb iridate D3LiIr2O6. npj Quantum Materials. 10(1). 1 indexed citations
3.
Campbell, B., et al.. (2024). Nanoscale electronic inhomogeneities in 1T-TaS2. Physical Review Materials. 8(3). 3 indexed citations
4.
Torre, A. de la, Jacob P. C. Ruff, Patrick M. Woodward, et al.. (2024). Pseudosymmetry in Tetragonal Perovskite SrIrO3 Synthesized under High Pressure. ACS Applied Electronic Materials. 6(9). 6820–6825. 1 indexed citations
5.
Torre, A. de la, Deniz Wong, Christian Schulz, et al.. (2024). Elucidating the Role of Dimensionality on the Electronic Structure of the Van der Waals Antiferromagnet NiPS3. SHILAP Revista de lepidopterología. 3(4). 8 indexed citations
7.
Torre, A. de la, Faranak Bahrami, Jungho Kim, et al.. (2023). Momentum-independent magnetic excitation continuum in the honeycomb iridate H3LiIr2O6. Nature Communications. 14(1). 5018–5018. 10 indexed citations
8.
Marshall, Madalynn, Zhen Wang, K. W. Plumb, et al.. (2023). Non-Centrosymmetric Sr2IrO4 Obtained Under High Pressure. Inorganic Chemistry. 62(5). 2161–2168. 3 indexed citations
9.
Higo, Tomoya, SuYin Grass Wang, M. B. Stone, et al.. (2022). Bond ordering and molecular spin-orbital fluctuations in the cluster Mott insulator GaTa4Se8. Physical Review Research. 4(3). 5 indexed citations
10.
Chamorro, Juan R., L. Ge, Faranak Bahrami, et al.. (2022). Electronic structure of the frustrated diamond lattice magnet NiRh2O4. Physical review. B.. 106(4). 5 indexed citations
11.
Changlani, Hitesh J., Shu Zhang, K. W. Plumb, Oleg Tchernyshyov, & Roderich Moessner. (2019). Dynamical structure factor of the three-dimensional quantum spin liquid candidate NaCaNi 2 F 7. Bulletin of the American Physical Society. 2019. 3 indexed citations
12.
Zhang, Shu, Hitesh J. Changlani, K. W. Plumb, Oleg Tchernyshyov, & Roderich Moessner. (2019). Dynamical Structure Factor of the Three-Dimensional Quantum Spin Liquid Candidate NaCaNi2F7. Physical Review Letters. 122(16). 167203–167203. 53 indexed citations
13.
Plumb, K. W., Christian Stock, J. A. Rodriguez‐Rivera, et al.. (2018). From mean-field localized magnetism to itinerant spin fluctuations in the “nonmetallic metal” FeCrAs. Physical review. B.. 97(18). 8 indexed citations
14.
Krizan, Jason W., et al.. (2016). NaSrMn2F7, NaCaFe2F7, and NaSrFe2F7: novel single crystal pyrochlore antiferromagnets. Journal of Physics Condensed Matter. 29(4). 45801–45801. 24 indexed citations
15.
Sandilands, Luke J., Yao Tian, Anjan Reijnders, et al.. (2016). Spin-orbit excitations and electronic structure of the putative Kitaev magnetαRuCl3. Physical review. B.. 93(7). 130 indexed citations
16.
Morey, Jennifer R., K. W. Plumb, Chris Pasco, et al.. (2016). Growth and characterization of iron scandium sulfide (FeSc2S4). Journal of Crystal Growth. 454. 128–133. 7 indexed citations
17.
Sandilands, Luke J., Yao Tian, K. W. Plumb, Young‐June Kim, & Kenneth S. Burch. (2015). Scattering Continuum and Possible Fractionalized Excitations inαRuCl3. Physical Review Letters. 114(14). 147201–147201. 366 indexed citations breakdown →
18.
Plumb, K. W., A. T. Savici, G. E. Granroth, F. C. Chou, & Young‐June Kim. (2014). High-energy continuum of magnetic excitations in the two-dimensional quantum antiferromagnetSr2CuO2Cl2. Physical Review B. 89(18). 21 indexed citations
19.
Plumb, K. W., et al.. (2013). 5dに基づく二重ペロブスカイトBa 2 FeReO 6 の磁気励起の中性子散乱研究. Physical Review B. 87(18). 1–184412. 7 indexed citations
20.
Clancy, J. P., Ning Chen, Chang‐Yong Kim, et al.. (2012). Spin-orbit coupling in iridium-based 5dcompounds probed by x-ray absorption spectroscopy. Physical Review B. 86(19). 194 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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