4.8 Article

Challenges in Plasmonic Catalysis

期刊

ACS NANO
卷 14, 期 12, 页码 16202-16219

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.0c08773

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资金

  1. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany's Excellence Strategy [EXC 2089/1-390776260]
  2. Bavarian program Solar Energies Go Hybrid (SolTech)
  3. Center for NanoScience (CeNS)
  4. European Commission through the ERC [802989]
  5. Xunta de Galicia (Centro singular de investigacion de Galicia accreditation 2019-2022)
  6. European Union (European Regional Development Fund - ERDF)
  7. National Science Foundation [IIP-1941227]
  8. Dutch Research Council (NWO) via the Vidi [680-47-550]
  9. Royal Society [URF\R1\180097, RGF\EA\181038]
  10. DOE Photonics at Thermodynamic Limits Energy Frontier Research Center [DE-SC0019140]
  11. Gordon and Betty Moore Foundation [GBMF8048]

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The use of nanoplasmonics to control light and heat close to the thermodynamic limit enables exciting opportunities in the field of plasmonic catalysis. The decay of plasmonic excitations creates highly nonequilibrium distributions of hot carriers that can initiate or catalyze reactions through both thermal and nonthermal pathways. In this Perspective, we present the current understanding in the field of plasmonic catalysis, capturing vibrant debates in the literature, and discuss future avenues of exploration to overcome critical bottlenecks. Our Perspective spans first-principles theory and computation of correlated and far-from-equilibrium light-matter interactions, synthesis of new nanoplasmonic hybrids, and new steady-state and ultrafast spectroscopic probes of interactions in plasmonic catalysis, recognizing the key contributions of each discipline in realizing the promise of plasmonic catalysis. We conclude with our vision for fundamental and technological advances in the field of plasmondriven chemical reactions in the coming years.

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