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- W2080407968 abstract "In pursuit of a better understanding of how electronic excitation migrates within complex structures, the concept of resonance energy transfer is being extended and deployed in a wide range of applications. Utilizing knowledge of the quantum interactions that operate in natural photosynthetic systems, wide-ranging molecular and solid-state materials are explored in the cause of more efficient solar energy harvesting, while advances in theory are paving the way for the development and application of fundamentally new mechanisms. In this review, an introduction to the underlying processes that cause singlet-singlet and triplet-triplet energy transfer leads into a discussion of how a new conception of these fundamental processes has emerged over recent years. Illustrative examples relevant to laser science and photonics are described, including photosynthetic light-harvesting, light-activated sensors, processes of cooperative and accretive energy pooling and quantum cutting in rare earth-doped crystals, and incoherent triplet-triplet energy upconversion in molecular solutions." @default.
- W2080407968 created "2016-06-24" @default.
- W2080407968 creator A5029838157 @default.
- W2080407968 creator A5062434121 @default.
- W2080407968 creator A5087185165 @default.
- W2080407968 date "2010-12-27" @default.
- W2080407968 modified "2023-10-17" @default.
- W2080407968 title "Resonance energy transfer: Beyond the limits" @default.
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- W2080407968 doi "https://doi.org/10.1002/lpor.201000004" @default.
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