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Liquid–Solid Transfer Process of Ordered Structures in Efficient Polymer Photovoltaic Materials AITranslate

South China Normal University (SCNU);Institute of High Energy Physics; South China Normal University (SCNU); South China Normal University (SCNU); South China Normal University (SCNU);Institute of High Energy Physics; South China University of Technology (SCUT); South China University of Technology (SCUT); Gannan Medical University (GMU); South China Normal University (SCNU); South China Normal University (SCNU); South China University of Technology (SCUT)
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Publisher: ACS
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Abstract AITranslate

The single-chain conformations and aggregated structures of conjugated polymers in precursor solutions affect the morphology of films and their photoelectric properties. Dynamic/static light scattering, small-angle neutron scattering, high-resolution transmission electron microscopy, and selected area electron diffraction were employed to elucidate the single-chain conformations and aggregated structures of efficient donor polymers (PBDT-TTz and D18-Cl) in chloroform (CF, nonaromatic solvent) and chlorobenzene (CB, aromatic solvent) for a range of concentrations (0.03–5.0 mg/mL). D18-Cl presented a more rigid and extended chain conformation in dilute CF solution. However, the relatively flexible PBDT-TTz easily formed π–π interaction with the aromatic CB molecules, thereby extending the main chain’s conjugation length. Regulation of the extended single-chain conformation in dilute solution resulted in the formation of a compact, ordered aggregated structure at increased concentrations. In the liquid–solid cross-phase transfer process, the ordered structures in the precursor solution were effectively inherited by the subsequent films. From dilute to concentrated solutions, the multistage self-assembled structures of conjugated polymers directly affected their solid-state packing and photoelectric properties of the resulting films. Through the regulation of the ordered aggregation in their precursor solution, the hole mobilities of PBDT-TTz and D18-Cl were increased by nearly an order of magnitude, and the power conversion efficiency of the solar cells was enhanced by 28.8%.

KeyWords AITranslate

conjugated polymer chain solution behavior liquid−solid crossphase transfer film condensedstate structure hole mobility
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Basic Information:

DOI:https://doi.org/10.1021/acsapm.3c02608

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Citation Information:

The single-chain conformations and aggregated structures of conjugated polymers in precursor solutions affect the morphology of films and their photoelectric properties. Dynamic/static light scattering, small-angle neutron scattering, high-resolution transmission electron microscopy, and selected area electron diffraction were employed to elucidate the single-chain conformations and aggregated structures of efficient donor polymers (PBDT-TTz and D18-Cl) in chloroform (CF, nonaromatic solvent) and chlorobenzene (CB, aromatic solvent) for a range of concentrations (0.03–5.0 mg/mL). D18-Cl presented a more rigid and extended chain conformation in dilute CF solution. However, the relatively flexible PBDT-TTz easily formed π–π interaction with the aromatic CB molecules, thereby extending the main chain’s conjugation length. Regulation of the extended single-chain conformation in dilute solution resulted in the formation of a compact, ordered aggregated structure at increased concentrations. In the liquid–solid cross-phase transfer process, the ordered structures in the precursor solution were effectively inherited by the subsequent films. From dilute to concentrated solutions, the multistage self-assembled structures of conjugated polymers directly affected their solid-state packing and photoelectric properties of the resulting films. Through the regulation of the ordered aggregation in their precursor solution, the hole mobilities of PBDT-TTz and D18-Cl were increased by nearly an order of magnitude, and the power conversion efficiency of the solar cells was enhanced by 28.8%.

quote

GB/T 7714-2015 [1] Jiaxuan Ren, LiMing Wang, Qingduan Li, et al. ACS Applied Polymer Materials, 2024(6). DOI:10.1021/acsapm.3c02608.
MLA [1] Jiaxuan Ren, et al., ACS Applied Polymer Materials, no. 6, 2024, https://doi.org/10.1021/acsapm.3c02608.
APA [1] Jiaxuan Ren, LiMing Wang, Qingduan Li, Lingzhi Guo, Xiaolan Liao, Zhenhua Xie, Jiabin Zhang, Kai Zhang, Zhixiong Cao, YuePeng Cai, Shengjian Liu, & Fei Huang. (2024). ACS Applied Polymer Materials(6). https://doi.org/10.1021/acsapm.3c02608
IEEE [1] Jiaxuan Ren, LiMing Wang, Qingduan Li, Lingzhi Guo, Xiaolan Liao, Zhenhua Xie, Jiabin Zhang, Kai Zhang, Zhixiong Cao, YuePeng Cai, Shengjian Liu, and Fei Huang, ACS Applied Polymer Materials, no. 6, 2024, doi: 10.1021/acsapm.3c02608. keywords: {conjugated polymer;chain solution behavior;liquid−solid crossphase transfer;film condensedstate structure;hole mobility}