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Nonpolymer Organic Solar Cells: Microscopic Phonon Control to Suppress Nonradiative Voltage Loss via Charge-Separated State

[Image: see text] Recent remarkable developments on nonfullerene solar cells have reached a photoelectric conversion efficiency (PCE) of 18% by tuning the band energy levels in small molecular acceptors. In this regard, understanding the impact of small donor molecules on nonpolymer solar cells is e...

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Autores principales: Nagatomo, Takaaki, Vats, Ajendra K., Matsuo, Kyohei, Oyama, Shinya, Okamoto, Naoya, Suzuki, Mitsuharu, Koganezawa, Tomoyuki, Fuki, Masaaki, Masuo, Sadahiro, Ohta, Kaoru, Yamada, Hiroko, Kobori, Yasuhiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10037453/
https://www.ncbi.nlm.nih.gov/pubmed/36968446
http://dx.doi.org/10.1021/acsphyschemau.2c00049
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author Nagatomo, Takaaki
Vats, Ajendra K.
Matsuo, Kyohei
Oyama, Shinya
Okamoto, Naoya
Suzuki, Mitsuharu
Koganezawa, Tomoyuki
Fuki, Masaaki
Masuo, Sadahiro
Ohta, Kaoru
Yamada, Hiroko
Kobori, Yasuhiro
author_facet Nagatomo, Takaaki
Vats, Ajendra K.
Matsuo, Kyohei
Oyama, Shinya
Okamoto, Naoya
Suzuki, Mitsuharu
Koganezawa, Tomoyuki
Fuki, Masaaki
Masuo, Sadahiro
Ohta, Kaoru
Yamada, Hiroko
Kobori, Yasuhiro
author_sort Nagatomo, Takaaki
collection PubMed
description [Image: see text] Recent remarkable developments on nonfullerene solar cells have reached a photoelectric conversion efficiency (PCE) of 18% by tuning the band energy levels in small molecular acceptors. In this regard, understanding the impact of small donor molecules on nonpolymer solar cells is essential. Here, we systematically investigated mechanisms of solar cell performance using diketopyrrolopyrrole (DPP)–tetrabenzoporphyrin (BP) conjugates of C4-DPP–H(2)BP and C4-DPP–ZnBP, where C4 represents the butyl group substituted at the DPP unit as small p-type molecules, while an acceptor of [6,6]-phenyl-C(61)-buthylic acid methyl ester is employed. We clarified the microscopic origins of the photocarrier caused by phonon-assisted one-dimensional (1D) electron–hole dissociations at the donor–acceptor interface. Using a time-resolved electron paramagnetic resonance, we have characterized controlled charge-recombination by manipulating disorders in π–π donor stacking. This ensures carrier transport through stacking molecular conformations to suppress nonradiative voltage loss capturing specific interfacial radical pairs separated by 1.8 nm in bulk-heterojunction solar cells. We show that, while disordered lattice motions by the π–π stackings via zinc ligation are essential to enhance the entropy for charge dissociations at the interface, too much ordered crystallinity causes the backscattering phonon to reduce the open-circuit voltage by geminate charge-recombination.
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spelling pubmed-100374532023-03-25 Nonpolymer Organic Solar Cells: Microscopic Phonon Control to Suppress Nonradiative Voltage Loss via Charge-Separated State Nagatomo, Takaaki Vats, Ajendra K. Matsuo, Kyohei Oyama, Shinya Okamoto, Naoya Suzuki, Mitsuharu Koganezawa, Tomoyuki Fuki, Masaaki Masuo, Sadahiro Ohta, Kaoru Yamada, Hiroko Kobori, Yasuhiro ACS Phys Chem Au [Image: see text] Recent remarkable developments on nonfullerene solar cells have reached a photoelectric conversion efficiency (PCE) of 18% by tuning the band energy levels in small molecular acceptors. In this regard, understanding the impact of small donor molecules on nonpolymer solar cells is essential. Here, we systematically investigated mechanisms of solar cell performance using diketopyrrolopyrrole (DPP)–tetrabenzoporphyrin (BP) conjugates of C4-DPP–H(2)BP and C4-DPP–ZnBP, where C4 represents the butyl group substituted at the DPP unit as small p-type molecules, while an acceptor of [6,6]-phenyl-C(61)-buthylic acid methyl ester is employed. We clarified the microscopic origins of the photocarrier caused by phonon-assisted one-dimensional (1D) electron–hole dissociations at the donor–acceptor interface. Using a time-resolved electron paramagnetic resonance, we have characterized controlled charge-recombination by manipulating disorders in π–π donor stacking. This ensures carrier transport through stacking molecular conformations to suppress nonradiative voltage loss capturing specific interfacial radical pairs separated by 1.8 nm in bulk-heterojunction solar cells. We show that, while disordered lattice motions by the π–π stackings via zinc ligation are essential to enhance the entropy for charge dissociations at the interface, too much ordered crystallinity causes the backscattering phonon to reduce the open-circuit voltage by geminate charge-recombination. American Chemical Society 2022-12-30 /pmc/articles/PMC10037453/ /pubmed/36968446 http://dx.doi.org/10.1021/acsphyschemau.2c00049 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Nagatomo, Takaaki
Vats, Ajendra K.
Matsuo, Kyohei
Oyama, Shinya
Okamoto, Naoya
Suzuki, Mitsuharu
Koganezawa, Tomoyuki
Fuki, Masaaki
Masuo, Sadahiro
Ohta, Kaoru
Yamada, Hiroko
Kobori, Yasuhiro
Nonpolymer Organic Solar Cells: Microscopic Phonon Control to Suppress Nonradiative Voltage Loss via Charge-Separated State
title Nonpolymer Organic Solar Cells: Microscopic Phonon Control to Suppress Nonradiative Voltage Loss via Charge-Separated State
title_full Nonpolymer Organic Solar Cells: Microscopic Phonon Control to Suppress Nonradiative Voltage Loss via Charge-Separated State
title_fullStr Nonpolymer Organic Solar Cells: Microscopic Phonon Control to Suppress Nonradiative Voltage Loss via Charge-Separated State
title_full_unstemmed Nonpolymer Organic Solar Cells: Microscopic Phonon Control to Suppress Nonradiative Voltage Loss via Charge-Separated State
title_short Nonpolymer Organic Solar Cells: Microscopic Phonon Control to Suppress Nonradiative Voltage Loss via Charge-Separated State
title_sort nonpolymer organic solar cells: microscopic phonon control to suppress nonradiative voltage loss via charge-separated state
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10037453/
https://www.ncbi.nlm.nih.gov/pubmed/36968446
http://dx.doi.org/10.1021/acsphyschemau.2c00049
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