David Mandrus

Active 1996–2024

48
Papers
28,658
Citations
46
h-index
47
i10-index

Citations

Citations per year for David Mandrus1905: 1 citations1986: 1 citations1997: 7 citations1998: 11 citations1999: 10 citations2000: 14 citations2001: 25 citations2002: 5 citations2003: 7 citations2004: 9 citations2005: 6 citations2006: 17 citations2007: 8 citations2008: 47 citations2009: 75 citations2010: 49 citations2011: 39 citations2012: 25 citations2013: 42 citations2014: 171 citations2015: 258 citations2016: 227 citations2017: 247 citations2018: 215 citations2019: 169 citations2020: 142 citations2021: 134 citations2022: 83 citations2023: 46 citations2024: 66 citations2025: 20 citations1906–1985: no citations, so these years are not shown1987–1996: no citations, so these years are not shown

Citation sources

Countries

World map of the countries and regions citing this authorUnited States: 694 citing papers, 28.2% of this breakdownChina: 440 citing papers, 17.8% of this breakdownJapan: 169 citing papers, 6.9% of this breakdownGermany: 157 citing papers, 6.4% of this breakdownUnited Kingdom: 113 citing papers, 4.6% of this breakdownSingapore: 103 citing papers, 4.2% of this breakdownFrance: 78 citing papers, 3.2% of this breakdownSouth Korea: 70 citing papers, 2.8% of this breakdownHong Kong: 63 citing papers, 2.6% of this breakdownSpain: 55 citing papers, 2.2% of this breakdownSwitzerland: 48 citing papers, 1.9% of this breakdownAustralia: 40 citing papers, 1.6% of this breakdown
0%28.2%Other 17.6%

Fields

  • Materials Science75.1%
  • Physics and Astronomy11.6%
  • Engineering8.3%
  • Biochemistry, Genetics and Molecular Biology2%
  • Computer Science1.7%
  • Energy0.8%
  • Other0.5%

Topics

  • 2D Materials and Applications18.5%
  • Graphene research and applications7.8%
  • Perovskite Materials and Applications7.7%
  • MXene and MAX Phase Materials6.9%
  • Advanced Thermoelectric Materials and Devices4.5%
  • Iron-based superconductors research3.7%
  • Other50.9%

Coauthors

All papers

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  1. Signatures of moiré-trapped valley excitons in MoSe2/WSe2 heterobilayers

    Authors: , , , , , , , , - Nature 2019 cited by 1,232

  2. Electrically tunable excitonic light-emitting diodes based on monolayer WSe2 p–n junctions

    Authors: , , , , , , , , , , , - Nature Nanotechnology 2014 cited by 1,671

  3. Monolayer semiconductor nanocavity lasers with ultralow thresholds

    Authors: , , , , , , , , , , - Nature 2015 cited by 904

  4. Electrical control of neutral and charged excitons in a monolayer semiconductor

    Authors: , , , , , , , , , , - Nature Communications 2013 cited by 1,574

  5. Observation of long-lived interlayer excitons in monolayer MoSe2–WSe2 heterostructures

    Authors: , , , , , , , , , , , , , - Nature Communications 2015 cited by 1,663

  6. Magnetic control of valley pseudospin in monolayer WSe2

    Authors: , , , , , , , , , - Nature Physics 2015 cited by 937

  7. Probing excitonic states in suspended two-dimensional semiconductors by photocurrent spectroscopy

    Authors: , , , , , , , , , , , , , , , - Scientific Reports 2014 cited by 441

  8. Magnetism in two-dimensional van der Waals materials

    Authors: , , - Nature 2018 cited by 1,758

  9. Low-Resistance 2D/2D Ohmic Contacts: A Universal Approach to High-Performance WSe2, MoS2, and MoSe2 Transistors

    Authors: , , , , , , , - Nano Letters 2016 cited by 415

  10. Deterministic switching of a perpendicularly polarized magnet using unconventional spin–orbit torques in WTe2

    Authors: , , , , , , , , , , , , , , , , - Nature Materials 2022 cited by 207

  11. Optical generation of excitonic valley coherence in monolayer WSe2

    Authors: , , , , , , , , , , , - Nature Nanotechnology 2013 cited by 1,458

  12. Valley-polarized exciton dynamics in a 2D semiconductor heterostructure

    Authors: , , , , , , , - Science 2016 cited by 827

  13. Electrical control of second-harmonic generation in a WSe2 monolayer transistor

    Authors: , , , , , , , , , - Nature Nanotechnology 2015 cited by 568

  14. The emergent field of high entropy oxides: Design, prospects, challenges, and opportunities for tailoring material properties

    Authors: , , , , , , , - APL Materials 2020 cited by 287

  15. Flexible metallic nanowires with self-adaptive contacts to semiconducting transition-metal dichalcogenide monolayers

    Authors: , , , , , , , , , , , , , , , , , - Nature Nanotechnology 2014 cited by 284

  16. Proximate Kitaev quantum spin liquid behaviour in a honeycomb magnet

    Authors: , , , , , , , , , , , , , , , - Nature Materials 2016 cited by 942

  17. Superconductivity at 22 K in Co-DopedBaFe2As2Crystals

    Authors: , , , , , - Physical Review Letters 2008 cited by 1,068

  18. Tunneling Spin Valves Based on Fe3GeTe2/hBN/Fe3GeTe2 van der Waals Heterostructures

    Authors: , , , , , - Nano Letters 2018 cited by 467

  19. Spin–layer locking effects in optical orientation of exciton spin in bilayer WSe2

    Authors: , , , , , , , , - Nature Physics 2014 cited by 370

  20. Excitations in the field-induced quantum spin liquid state of α-RuCl3

    Authors: , , , , , , , , , , , , , , , , - npj Quantum Materials 2017 cited by 352

  21. Interlayer Exciton Optoelectronics in a 2D Heterostructure p–n Junction

    Authors: , , , , , , , , , , , - Nano Letters 2016 cited by 334

  22. New Fe-based superconductors: properties relevant for applications

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , , - Superconductor Science and Technology 2010 cited by 300

  23. Imaging exciton–polariton transport in MoSe2 waveguides

    Authors: , , , , , , - Nature Photonics 2017 cited by 266

  24. Trion formation dynamics in monolayer transition metal dichalcogenides

    Authors: , , , , , , , , , , , , , , , - Physical review. B./Physical review. B 2016 cited by 237