材料科学
能量转换效率
钝化
钙钛矿(结构)
聚合物太阳能电池
噻吩
聚合物
串联
喹喔啉
光电子学
开路电压
化学工程
电压
纳米技术
有机化学
图层(电子)
复合材料
化学
物理
量子力学
工程类
作者
Chen Duan,Ailing Tang,Qiang Guo,Weilin Zhang,Lei Yang,Yuanjia Ding,Zheng Dai,Erjun Zhou
标识
DOI:10.1002/adfm.202313462
摘要
Abstract The power conversion efficiency (PCE) of CsPbI 2 Br perovskite solar cells (PSCs) is still far from the theoretical efficiency due to the pronounced losses in open‐circuit voltage ( V OC ). The V OC loss can be mitigated by employing an appropriate hole transport layer (HTL), which facilitates energy level alignment and minimizes interface recombination losses. In this work, two D‐π‐A type polymers are chosen, PE64 and PE65, as HTLs, where pentacyclic dithieno[2,3‐d; 2′,3′‐d “]benzo[1,2‐b; 4,5‐b”]dithiophene (DTBDT) as the D‐unit and quinoxaline (Qx) as the A‐unit. It is demonstrated that the polymer PE65 with chlorinated thiophene side chain on the DTBDT unit has an optimized molecular arrangement, improved energy level matching, and enhanced passivation with CsPbI 2 Br, effectively reducing the losses caused by radiative and non‐radiative recombination in CsPbI 2 Br PSCs. Finally, the CsPbI 2 Br PSCs utilizing PE65 as HTL achieve a power conversion efficiency (PCE) of 17.60% with a high V OC of 1.44 V. Furthermore, the PE64 and PE65 are also employed to construct inter‐connecting layers (ICLs) for tandem solar cells (TSCs). The CsPbI 2 Br/D18:Y6 TSCs based on PE65‐ICL yield a PCE of 22.32% with a high V OC of 2.25 V. This work demonstrates that pentacyclic DTBDT‐based polymers are also promising HTLs for high‐performance PSCs and TSCs.
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