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Polariton chemistry: controlling molecular dynamics with optical cavities

Chemical Science · 2018 · Vol. 9(30) · pp. 6325–6339
Raphael F. RibeiroLuis Á. Martínez-MartínezMatthew DuJorge A. Campos-Gonzalez-AnguloJoel Yuen-Zhou

Abstract

Molecular polaritons are the optical excitations which emerge when molecular transitions interact strongly with confined electromagnetic fields. Increasing interest in the hybrid molecular-photonic materials that host these excitations stems from recent observations of their novel and tunable chemistry. Some of the remarkable functionalities exhibited by polaritons include the ability to induce long-range excitation energy transfer, enhance charge conductivity, and inhibit or accelerate chemical reactions. In this review, we explain the effective theories of molecular polaritons which form a basis for the interpretation and guidance of experiments at the strong coupling limit. The theoretical discussion is illustrated with the analysis of innovative applications of strongly coupled molecular-photonic systems to chemical phenomena of fundamental importance to future technologies.

Strong Light-Matter InteractionsThermal Radiation and Cooling TechnologiesPlasmonic and Surface Plasmon ResearchPolaritonChemistryDynamics (music)Molecular dynamicsChemical physicsNanotechnologyComputational chemistryOptoelectronicsPhysicsMaterials science

Funding

  • National Science Foundation
  • Consejo Nacional de Ciencia y Tecnología
  • University of California, San Diego
  • Division of Chemistry
Citations
633
FWCI
37.48
field-weighted impact
References
183
Percentile
100%
vs. same field & year
Citations per year
References
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Physical Review · 1954 · 7,259 citations
Coherent 2D IR Spectroscopy:  Molecular Structure and Dynamics in Solution
The Journal of Physical Chemistry A · 2003 · 692 citations
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