Issue 23, 2023

Random double-cable conjugated polymers with controlled acceptor contents for single-component organic solar cells

Abstract

Double-cable conjugated polymers contain electron-donating (D) backbones and electron-accepting (A) side units, in which the nanophase separation of the donor and acceptor segments is a crucial factor to determine the photovoltaic performance of single-component organic solar cells (SCOSCs). In this work, three random double-cable conjugated polymers (denoted as P1–P3 with enhanced acceptor contents) have been designed to tailor the nanophase separation of D/A to realize high-performance SCOSCs. These new random double-cable conjugated polymers contain identical polymer backbones with varied contents of near-infrared acceptor side units. It is observed that the acceptor contents could effectively tune the aggregation degree of the backbone and acceptor (shown in the absorption spectra and grazing-incidence wide-angle X-ray scattering measurement) and further influence the construction of charge-transporting pathways. Therefore, a moderate content of acceptor side units provides balanced D/A aggregation and optimal nanophase separation, resulting in a high efficiency of 9.4% in SCOSCs. These results demonstrate that random double-cable conjugated polymers are an excellent model for studying the impact of their aggregation/crystallinity so as to realize high-performance SCOSCs.

Graphical abstract: Random double-cable conjugated polymers with controlled acceptor contents for single-component organic solar cells

Supplementary files

Article information

Article type
Paper
Submitted
11 Mar 2023
Accepted
15 May 2023
First published
16 May 2023

J. Mater. Chem. A, 2023,11, 12236-12244

Random double-cable conjugated polymers with controlled acceptor contents for single-component organic solar cells

B. Liu, S. Liang, S. Karuthedath, C. Xiao, J. Wang, W. L. Tan, R. Li, H. Li, J. Hou, Z. Tang, F. Laquai, C. R. McNeill, Y. Xu and W. Li, J. Mater. Chem. A, 2023, 11, 12236 DOI: 10.1039/D3TA01501G

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