Annihilation-limited long-range exciton transport in high-mobility conjugated copolymer films

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dc.contributor.author Shi, Yuping
dc.contributor.author Roy, Partha P.
dc.contributor.author Higashitarumizu, Naoki
dc.contributor.author Lee, Tsung-Yen
dc.contributor.author Li, Quanwei
dc.contributor.author Javey, Ali
dc.contributor.author Landfester, Katharina
dc.contributor.author McCulloch, Iain
dc.contributor.author Fleming, Graham R.
dc.coverage.spatial United States of America
dc.date.accessioned 2025-05-29T07:58:02Z
dc.date.available 2025-05-29T07:58:02Z
dc.date.issued 2025-04
dc.identifier.citation Shi, Yuping; Roy, Partha P.; Higashitarumizu, Naoki; Lee, Tsung-Yen; Li, Quanwei; Javey, Ali; Landfester, Katharina; McCulloch, Iain and Fleming, Graham R., "Annihilation-limited long-range exciton transport in high-mobility conjugated copolymer films", Proceedings of the National Academy of Sciences, DOI: 10.1073/pnas.2413850122, vol. 122, no. 17, pp. 199-228, Apr. 2025.
dc.identifier.issn 0027-8424
dc.identifier.issn 1091-6490
dc.identifier.uri https://doi.org/10.1073/pnas.2413850122
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/11466
dc.description.abstract A combination of ultrafast, long-range, and low-loss excitation energy transfer from the photoreceptor location to a functionally active site is essential for cost-effective polymeric semiconductors. Delocalized electronic wavefunctions along π-conjugated polymer (CP) backbone can enable efficient intrachain transport, while interchain transport is generally thought slow and lossy due to weak chain–chain interactions. In contrast to the conventional strategy of mitigating structural disorder, amorphous layers of rigid CPs, exemplified by highly planar poly(indacenodithiophene-co-benzothiadiazole) (IDT-BT) donor-accepter copolymer, exhibit trap-free transistor performance and charge-carrier mobilities similar to amorphous silicon. Here, we report long-range exciton transport in HJ-aggregated IDTBT thin-film, in which the competing exciton transport and exciton–exciton annihilation (EEA) dynamics are spectroscopically separated using a phase-cycling-based scheme and shown to depart from the classical diffusion-limited and strong-coupling regime. In the thin film, we find an annihilation-limited mechanism with ≪100% per-encounter annihilation probability, facilitating the minimization of EEA-induced excitation losses. In contrast, excitons on isolated IDTBT chains diffuse over 350 nm with 0.56 cm2 s−1 diffusivity, before eventually annihilating with unit probability on first contact. We complement the pump–probe studies with temperature-dependent photocurrent and EEA measurements from 295 K to 77 K and find a remarkable correspondence of annihilation rate and photocurrent activation energies in the 140 K to 295 K temperature range.
dc.description.statementofresponsibility by Yuping Shi, Partha P. Roy, Naoki Higashitarumizu, Tsung-Yen Lee, Quanwei Li, Ali Javey, Katharina Landfester, Iain McCulloch and Graham R. Fleming
dc.format.extent vol. 122, no. 17, pp. 199-228
dc.language.iso en_US
dc.publisher National Academy of Sciences
dc.subject Organic semiconductor
dc.subject Ultrafast spectroscopy
dc.subject Energy transfer
dc.subject Exciton annihilation
dc.subject Many-body interaction
dc.title Annihilation-limited long-range exciton transport in high-mobility conjugated copolymer films
dc.type Article
dc.relation.journal Proceedings of the National Academy of Sciences


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