4.8 Article

Near-Unity Singlet Fission on a Quantum Dot Initiated by Resonant Energy Transfer

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 143, Issue 42, Pages 17388-17394

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.1c04731

Keywords

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Funding

  1. KAKENHI [18H01827, 21H04638, 20K05652, 20KK0120, JP16H06520, JP17H05257]
  2. JST FOREST Program [JPMJFR201M]
  3. JSPS Research Fellowship [19J14834]
  4. Grants-in-Aid for Scientific Research [20K05652, 20KK0120, 21H04638, 19J14834, 18H01827] Funding Source: KAKEN

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Researchers have achieved near-unity singlet fission by assembling Pc chromophores on nanosized CdTe quantum dots, leading to suppression of triplet-triplet annihilation and efficient light-harvesting. The unique arrangement of Pc on the quantum dots surface plays a key role in realizing the singlet fission, with rapid dissociation of triplet pairs contributing to long-lived triplets.
The conversion of a high-energy photon into two excitons using singlet fission (SF) has stimulated a variety of studies in fields from fundamental physics to device applications. However, efficient SF has only been achieved in limited systems, such as solid crystals and covalent dimers. Here, we established a novel system by assembling 4-(6,13- bis(2-(triisopropylsilyl)ethynyl) pentacen-2-yl)benzoic acid (Pc) chromophores on nanosized CdTe quantum dots (QDs). A near-unity SF (198 +/- 5.7%) initiated by interfacial resonant energy transfer from CdTe to surface Pc was obtained. The unique arrangement of Pc determined by the surface atomic configuration of QDs is the key factor realizing unity SF. The triplet-triplet annihilation was remarkably suppressed due to the rapid dissociation of triplet pairs, leading to long-lived free triplets. In addition, the low light-harvesting ability of Pc in the visible region was promoted by the efficient energy transfer (99 +/- 5.8%) from the QDs to Pc. The synergistically enhanced light-harvesting ability, high triplet yield, and long-lived triplet lifetime of the SF system on nanointerfaces could pave the way for an unmatched advantage of SF.

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