Phillip Christopher

Active 2008–2025

34
Papers
18,552
Citations
30
h-index
32
i10-index

Citations

Citations per year for Phillip Christopher1980: 1 citations2005: 4 citations2009: 2 citations2010: 2 citations2011: 17 citations2012: 62 citations2013: 83 citations2014: 106 citations2015: 127 citations2016: 126 citations2017: 183 citations2018: 154 citations2019: 227 citations2020: 251 citations2021: 156 citations2022: 186 citations2023: 86 citations2024: 85 citations2025: 35 citations2026: 1 citations1981–2004: no citations, so these years are not shown2006–2008: no citations, so these years are not shown

Citation sources

Countries

World map of the countries and regions citing this authorChina: 618 citing papers, 33.8% of this breakdownUnited States: 369 citing papers, 20.2% of this breakdownUnited Kingdom: 69 citing papers, 3.8% of this breakdownJapan: 69 citing papers, 3.8% of this breakdownGermany: 66 citing papers, 3.6% of this breakdownSingapore: 55 citing papers, 3% of this breakdownSouth Korea: 48 citing papers, 2.6% of this breakdownAustralia: 45 citing papers, 2.5% of this breakdownSpain: 41 citing papers, 2.2% of this breakdownIndia: 39 citing papers, 2.1% of this breakdownFrance: 33 citing papers, 1.8% of this breakdownCanada: 32 citing papers, 1.8% of this breakdown
0%33.8%Other 18.8%

Fields

  • Materials Science38%
  • Energy35.8%
  • Engineering7.3%
  • Chemical Engineering6.3%
  • Biochemistry, Genetics and Molecular Biology4.7%
  • Chemistry3.2%
  • Other4.7%

Topics

  • Advanced Photocatalysis Techniques12.9%
  • Catalytic Processes in Materials Science8.3%
  • Gold and Silver Nanoparticles Synthesis and Applications7.9%
  • Copper-based nanomaterials and applications6.6%
  • Advanced biosensing and bioanalysis techniques5.1%
  • Electrocatalysts for Energy Conversion4.5%
  • Other54.7%

Coauthors

All papers

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  1. Plasmonic-metal nanostructures for efficient conversion of solar to chemical energy

    Authors: , , - Nature Materials 2011 cited by 4,799

  2. Quantifying hot carrier and thermal contributions in plasmonic photocatalysis

    Authors: , , , , , , , , , , - Science 2018 cited by 1,134

  3. Light-driven methane dry reforming with single atomic site antenna-reactor plasmonic photocatalysts

    Authors: , , , , , , , , , , , , , - Nature Energy 2020 cited by 769

  4. Visible-light-enhanced catalytic oxidation reactions on plasmonic silver nanostructures

    Authors: , , - Nature Chemistry 2011 cited by 1,963

  5. Adsorbate-mediated strong metal–support interactions in oxide-supported Rh catalysts

    Authors: , , , , , , , - Nature Chemistry 2016 cited by 884

  6. Bifunctional hydroformylation on heterogeneous Rh-WOx pair site catalysts

    Authors: , , , , , , , , , , , , - Nature 2022 cited by 258

  7. Direct Photocatalysis by Plasmonic Nanostructures

    Authors: , , - ACS Catalysis 2013 cited by 915

  8. Singular characteristics and unique chemical bond activation mechanisms of photocatalytic reactions on plasmonic nanostructures

    Authors: , , , - Nature Materials 2012 cited by 874

  9. Structural evolution of atomically dispersed Pt catalysts dictates reactivity

    Authors: , , , , , , , , , , , - Nature Materials 2019 cited by 600

  10. First-principles design of a single-atom–alloy propane dehydrogenation catalyst

    Authors: , , , , , , , , , , , - Science 2021 cited by 370

  11. Balancing Near-Field Enhancement, Absorption, and Scattering for Effective Antenna–Reactor Plasmonic Photocatalysis

    Authors: , , , , , - Nano Letters 2017 cited by 259

  12. Plasmon-driven carbon–fluorine (C(sp3)–F) bond activation with mechanistic insights into hot-carrier-mediated pathways

    Authors: , , , , , , , - Nature Catalysis 2020 cited by 142

  13. Catalyst Architecture for Stable Single Atom Dispersion Enables Site-Specific Spectroscopic and Reactivity Measurements of CO Adsorbed to Pt Atoms, Oxidized Pt Clusters, and Metallic Pt Clusters on TiO2

    Authors: , , , , , , - Journal of the American Chemical Society 2017 cited by 742

  14. Utilizing Quantitative in Situ FTIR Spectroscopy To Identify Well-Coordinated Pt Atoms as the Active Site for CO Oxidation on Al2O3-Supported Pt Catalysts

    Authors: , - ACS Catalysis 2016 cited by 358

  15. Shape‐ and Size‐Specific Chemistry of Ag Nanostructures in Catalytic Ethylene Epoxidation

    Authors: , - ChemCatChem 2009 cited by 227

  16. Catalytic Resonance Theory: Parallel Reaction Pathway Control

    Authors: , , , , , , , - Chemical Science 2019 cited by 81

  17. Approaches for Understanding and Controlling Interfacial Effects in Oxide-Supported Metal Catalysts

    Authors: , , - ACS Catalysis 2018 cited by 313

  18. Catalytic and Photocatalytic Transformations on Metal Nanoparticles with Targeted Geometric and Plasmonic Properties

    Authors: , , , - Accounts of Chemical Research 2013 cited by 290

  19. Hot Charge Carrier Transmission from Plasmonic Nanostructures

    Authors: , - Annual Review of Physical Chemistry 2017 cited by 288

  20. Quantitative and Atomic-Scale View of CO-Induced Pt Nanoparticle Surface Reconstruction at Saturation Coverage via DFT Calculations Coupled with in Situ TEM and IR

    Authors: , , , , , - Journal of the American Chemical Society 2017 cited by 262

  21. Controlling Catalytic Selectivity on Metal Nanoparticles by Direct Photoexcitation of Adsorbate–Metal Bonds

    Authors: , , , , - Nano Letters 2014 cited by 253

  22. Should You Really be Writing A(nother) Review Manuscript?

    Authors: , , - ACS Energy Letters 2025 cited by 8

  23. Enhancing Photochemical Activity of Semiconductor Nanoparticles with Optically Active Ag Nanostructures: Photochemistry Mediated by Ag Surface Plasmons

    Authors: , , - The Journal of Physical Chemistry C 2010 cited by 334

  24. Predictive Model for the Design of Plasmonic Metal/Semiconductor Composite Photocatalysts

    Authors: , , , - ACS Catalysis 2011 cited by 312