Oleksandr Voznyy

Active 2010–2026

71
Papers
37,820
Citations
63
h-index
67
i10-index

Citations

Citations per year for Oleksandr Voznyy2007: 1 citations2011: 1 citations2012: 7 citations2013: 36 citations2014: 49 citations2015: 99 citations2016: 240 citations2017: 406 citations2018: 567 citations2019: 542 citations2020: 502 citations2021: 451 citations2022: 284 citations2023: 204 citations2024: 156 citations2025: 96 citations2026: 4 citations2008–2010: no citations, so these years are not shown

Citation sources

Countries

World map of the countries and regions citing this authorChina: 1,452 citing papers, 30.6% of this breakdownUnited States: 809 citing papers, 17% of this breakdownCanada: 232 citing papers, 4.9% of this breakdownSouth Korea: 207 citing papers, 4.4% of this breakdownUnited Kingdom: 185 citing papers, 3.9% of this breakdownAustralia: 167 citing papers, 3.5% of this breakdownGermany: 151 citing papers, 3.2% of this breakdownHong Kong: 149 citing papers, 3.1% of this breakdownSwitzerland: 127 citing papers, 2.7% of this breakdownSingapore: 124 citing papers, 2.6% of this breakdownSaudi Arabia: 118 citing papers, 2.5% of this breakdownJapan: 107 citing papers, 2.2% of this breakdown
0%30.6%Other 19.4%

Fields

  • Engineering46.8%
  • Energy30.4%
  • Materials Science14.9%
  • Biochemistry, Genetics and Molecular Biology2%
  • Chemical Engineering1.9%
  • Computer Science1.3%
  • Other2.7%

Topics

  • Perovskite Materials and Applications14.7%
  • Quantum Dots Synthesis And Properties10.2%
  • Electrocatalysts for Energy Conversion8.4%
  • Chalcogenide Semiconductor Thin Films6.2%
  • Advanced battery technologies research4.9%
  • Conducting polymers and applications4.3%
  • Other51.3%

Coauthors

All papers

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  1. Accelerated discovery of CO2 electrocatalysts using active machine learning

    Authors: , , , , , , , , , , , , , , , , , , , , , - Nature 2020 cited by 1,533

  2. Enhanced electrocatalytic CO2 reduction via field-induced reagent concentration

    Authors: , , , , , , , , , , , , , , , , , , - Nature 2016 cited by 1,984

  3. Stabilizing Highly Active Ru Sites by Suppressing Lattice Oxygen Participation in Acidic Water Oxidation

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , - Journal of the American Chemical Society 2021 cited by 548

  4. Next-Generation Tags for Fluorine Nuclear Magnetic Resonance: Designing Amplification of Chemical Shift Sensitivity

    Authors: , , , , , , , , , , , - Journal of the American Chemical Society 2024 cited by 33

  5. Homogeneously dispersed multimetal oxygen-evolving catalysts

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , - Science 2016 cited by 2,445

  6. High-valence metals improve oxygen evolution reaction performance by modulating 3d metal oxidation cycle energetics

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , - Nature Catalysis 2020 cited by 740

  7. The Open Catalyst 2022 (OC22) Dataset and Challenges for Oxide Electrocatalysis

    Authors: , , , , , , , , , , , , , , , , - ACS Catalysis 2023 cited by 288

  8. Machine Learning Accelerates Discovery of Optimal Colloidal Quantum Dot Synthesis

    Authors: , , , , , , , , , - ACS Nano 2019 cited by 188

  9. Highly Efficient Perovskite‐Quantum‐Dot Light‐Emitting Diodes by Surface Engineering

    Authors: , , , , , , , , , , , , , , , , , , , - Advanced Materials 2016 cited by 1,108

  10. Multi-site electrocatalysts for hydrogen evolution in neutral media by destabilization of water molecules

    Authors: , , , , , , , , , , , , , , - Nature Energy 2018 cited by 706

  11. Theory-driven design of high-valence metal sites for water oxidation confirmed using in situ soft X-ray absorption

    Authors: , , , , , , , , , , , , , , , , , - Nature Chemistry 2017 cited by 653

  12. Spin control in reduced-dimensional chiral perovskites

    Authors: , , , , , , , , , , , , , , , , , , , , , , , - Nature Photonics 2018 cited by 617

  13. Bright high-colour-purity deep-blue carbon dot light-emitting diodes via efficient edge amination

    Authors: , , , , , , , , , , , , , , , , - Nature Photonics 2019 cited by 494

  14. Perovskite energy funnels for efficient light-emitting diodes

    Authors: , , , , , , , , , , , , - Nature Nanotechnology 2016 cited by 2,292

  15. Sulfur-Modulated Tin Sites Enable Highly Selective Electrochemical Reduction of CO2 to Formate

    Authors: , , , , , , , , , , , , , , , , , - Joule 2017 cited by 506

  16. Dipole–dipole-interaction-assisted self-assembly of quantum dots for highly efficient light-emitting diodes

    Authors: , , , , , , , , , , , , , , , , - Nature Photonics 2024 cited by 228

  17. Ligand-Stabilized Reduced-Dimensionality Perovskites

    Authors: , , , , , , , , , , , - Journal of the American Chemical Society 2016 cited by 1,419

  18. Bipolar-shell resurfacing for blue LEDs based on strongly confined perovskite quantum dots

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , , , , - Nature Nanotechnology 2020 cited by 813

  19. Suppression of atomic vacancies via incorporation of isovalent small ions to increase the stability of halide perovskite solar cells in ambient air

    Authors: , , , , , , , , , , - Nature Energy 2018 cited by 737

  20. Hybrid passivated colloidal quantum dot solids

    Authors: , , , , , , , , , , , , , , , , - Nature Nanotechnology 2012 cited by 1,238

  21. Perovskite–fullerene hybrid materials suppress hysteresis in planar diodes

    Authors: , , , , , , , , , , , , , , , , , - Nature Communications 2015 cited by 1,110

  22. Quantum-dot-in-perovskite solids

    Authors: , , , , , , , , , - Nature 2015 cited by 579

  23. Continuous-wave lasing in colloidal quantum dot solids enabled by facet-selective epitaxy

    Authors: , , , , , , , , , , , , , , , , , , - Nature 2017 cited by 431

  24. Bright colloidal quantum dot light-emitting diodes enabled by efficient chlorination

    Authors: , , , , , , , , , , , , , - Nature Photonics 2018 cited by 415