4.8 Article

Resolving ultrafast exciton migration in organic solids at the nanoscale

期刊

NATURE MATERIALS
卷 16, 期 11, 页码 1136-+

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NATURE PUBLISHING GROUP
DOI: 10.1038/NMAT4975

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资金

  1. David and Lucile Packard Fellowship for Science and Engineering
  2. Dow Chemical Company [244699]
  3. STROBE
  4. National Science Foundation Science and Technology Center [DMR 1548924]
  5. Office of Science, Chemical Sciences, Geosciences, and Biosciences Division, of the US Department of Energy [DEAC02-05CH11231]
  6. Department of Energy Graduate Research Fellowship [DE-AC05-060R23100]

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Effectiveness of molecular-based light harvesting relies on transport of excitons to charge-transfer sites. Measuring exciton migration, however, has been challenging because of the mismatch between nanoscale migration lengths and the diffraction limit. Instead of using bulk substrate quenching methods, here we define quenching boundaries all-optically with sub-diffraction resolution, thus characterizing spatiotemporal exciton migration on its native nanometre and picosecond scales. By transforming stimulated emission depletion microscopy into a time-resolved ultrafast approach, we measure a 16-nm migration length in poly(2,5-di(hexyloxy)cyanoterephthalylidene) conjugated polymer films. Combined with Monte Carlo exciton hopping simulations, we show that migration in these films is essentially diffusive because intrinsic chromophore energetic disorder is comparable to chromophore inhomogeneous broadening. Our approach will enable previously unattainable correlation of local material structure to exciton migration character, applicable not only to photovoltaic or display-destined organic semiconductors but also to explaining the quintessential exciton migration exhibited in photosynthesis.

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