4.8 Article

Plasmon-Enhanced Upconversion

Journal

JOURNAL OF PHYSICAL CHEMISTRY LETTERS
Volume 5, Issue 22, Pages 4020-4031

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jz5019042

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Funding

  1. U.S. Department of Energy Sun Shot award [DE-EE0005331]
  2. Global Climate and Energy Project
  3. Stanford's Tom Kat Center for Sustainable Energy
  4. National Science Foundation Graduate Research Fellowship Program
  5. Gabilan Stanford Graduate Fellowship

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Upconversion, the conversion of photons from lower to higher energies, is a process that promises applications ranging from high-efficiency photovoltaic and photocatalytic cells to background-free bioimaging and therapeutic probes. Existing upconverting materials, however, remain too inefficient for viable implementation. In this Perspective, we describe the significant improvements in upconversion efficiency that can be achieved using plasmon resonances. As collective oscillations of free electrons, plasmon resonances can be used to enhance both the incident electromagnetic field intensity and the radiative emission rates. To date, this approach has shown upconversion enhancements up to 450x. We discuss both theoretical underpinnings and experimental demonstrations of plasmon-enhanced upconversion, examining the roles of upconverter quantum yield, plasmonic geometry, and plasmon spectral overlap. We also discuss nonoptical consequences of including metal nanostructures near upconverting emitters. The rapidly expanding field of plasmon-enhanced upconversion provides novel fundamental insight into nanoscale light-matter interactions while technological relevance. improving prospects for

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