David Mandrus
Impact in
- Condensed Matter Physics top 0.01%
- Advanced Condensed Matter Physics
- Physics of Superconductivity and Magnetism
- Rare-earth and actinide compounds
-
- Iron-based superconductors research
- Magnetic and transport properties of perovskites and related materials
Papers in
-
- Advanced Condensed Matter Physics 192
- Physics of Superconductivity and Magnetism 143
- Rare-earth and actinide compounds 118
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- Magnetic and transport properties of perovskites and related materials 130
- Iron-based superconductors research 122
- Multiferroics and related materials 55
- Co-authors
- B. C. Sales (145 shared papers)Jiaqiang Yan (120 shared papers)Xiaodong Xu (26 shared papers)Rongying Jin (107 shared papers)Wang Yao (21 shared papers)Michael A. McGuire (90 shared papers)Bryan C. Chakoumakos (30 shared papers)Athena S. Sefat (79 shared papers)
- Journals
- Physical Review B (93 papers)Physical Review Letters (68 papers)Physical review. B. (53 papers)Physical review. B, Condensed matter (44 papers)Nano Letters (18 papers)
- Partner nations
- United StatesJapanChina
In The Last Decade
David Mandrus
559 papers receiving 38.6k citations
David Mandrus's Hit Papers
Peers
Comparison fields: 5 of 109
- Condensed Matter Physics 15.8k
- Electronic, Optical and Magnetic Materials 16.4k
- Materials Chemistry 22.4k
- Atomic and Molecular Physics, and Optics 7.8k
- Electrical and Electronic Engineering 10.8k
Countries citing papers authored by David Mandrus
This map shows the geographic impact of David Mandrus'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 David Mandrus with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites David Mandrus more than expected).
Fields of papers citing papers by David Mandrus
This network shows the impact of papers produced by David Mandrus. 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 David Mandrus. The network helps show where David Mandrus may publish in the future.
Co-authors
The 25 scholars most cited alongside David Mandrus, linked wherever they have co-authored with each other. Click a name or a connecting line to browse the papers they share.
All Works
Showing the 20 most-cited of 570 papers — load more, or switch the sort, to bring in the rest.
| # | Work | ||
|---|---|---|---|
| 1 | Filled Skutterudite Antimonides: A New Class of Thermoelectric Materials Hit paper breakdown → | 1996 | 1853 |
| 2 | Electrically tunable excitonic light-emitting diodes based on monolayer WSe2 p–n junctions Hit paper breakdown → | 2014 | 1439 |
| 3 | Observation of long-lived interlayer excitons in monolayer MoSe2–WSe2 heterostructures Hit paper breakdown → | 2015 | 1317 |
| 4 | Electrical control of neutral and charged excitons in a monolayer semiconductor Hit paper breakdown → | 2013 | 1271 |
| 5 | Magnetism in two-dimensional van der Waals materials Hit paper breakdown → | 2018 | 1247 |
| 6 | Optical generation of excitonic valley coherence in monolayer WSe2 Hit paper breakdown → | 2013 | 1182 |
| 7 | Signatures of moiré-trapped valley excitons in MoSe2/WSe2 heterobilayers Hit paper breakdown → | 2019 | 931 |
| 8 | Superconductivity at 22 K in Co-Doped Hit paper breakdown → | 2008 | 873 |
| 9 | Magnetic control of valley pseudospin in monolayer WSe2 Hit paper breakdown → | 2015 | 768 |
| 10 | Filled skutterudite antimonides: Electron crystals and phonon glasses Hit paper breakdown → | 1997 | 767 |
| 11 | Proximate Kitaev quantum spin liquid behaviour in a honeycomb magnet Hit paper breakdown → | 2016 | 746 |
| 12 | Monolayer semiconductor nanocavity lasers with ultralow thresholds Hit paper breakdown → | 2015 | 713 |
| 13 | Valley-polarized exciton dynamics in a 2D semiconductor heterostructure Hit paper breakdown → | 2016 | 633 |
| 14 | Neutron scattering in the proximate quantum spin liquid α-RuCl 3 Hit paper breakdown → | 2017 | 533 |
| 15 | Localized vibrational modes in metallic solids Hit paper breakdown → | 1998 | 502 |
| 16 | Electrical control of second-harmonic generation in a WSe2 monolayer transistor Hit paper breakdown → | 2015 | 443 |
| 17 | 2008 | 442 | |
| 18 | 2014 | 421 | |
| 19 | 2001 | 413 | |
| 20 | Tunneling Spin Valves Based on Fe3GeTe2/hBN/Fe3GeTe2 van der Waals Heterostructures Hit paper breakdown → | 2018 | 395 |
About David Mandrus
David Mandrus is a scholar working on Condensed Matter Physics, Electronic, Optical and Magnetic Materials, Materials Chemistry, Atomic and Molecular Physics, and Optics and Electrical and Electronic Engineering, having authored 570 papers that have together received 39.2k indexed citations. Recurring topics across this work include Advanced Condensed Matter Physics (192 papers), Physics of Superconductivity and Magnetism (143 papers), Magnetic and transport properties of perovskites and related materials (130 papers), Iron-based superconductors research (122 papers), Rare-earth and actinide compounds (118 papers), 2D Materials and Applications (100 papers), Multiferroics and related materials (55 papers) and Topological Materials and Phenomena (50 papers). The work is most often cited by research in Condensed Matter Physics (15.8k citations), Electronic, Optical and Magnetic Materials (16.4k citations), Materials Chemistry (22.4k citations), Atomic and Molecular Physics, and Optics (7.8k citations) and Electrical and Electronic Engineering (10.8k citations). David Mandrus has collaborated with scholars based in United States, Japan and China. Frequent co-authors include B. C. Sales, Jiaqiang Yan, Xiaodong Xu, Rongying Jin, Wang Yao, Michael A. McGuire, Bryan C. Chakoumakos, Athena S. Sefat, R. K. Williams and Aaron M. Jones. Their work appears in journals such as Physical Review B, Physical Review Letters, Physical review. B., Physical review. B, Condensed matter and Nano Letters.
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.