| Literature DB >> 29741353 |
Yungen Wu1, Zhihui Wang2, Mao Liang1,3, Hua Cheng1, Mengyuan Li1, Liyuan Liu1, Baiyue Wang1, Jinhua Wu1, Raju Prasad Ghimire4, Xuda Wang1, Zhe Sun1, Song Xue1, Qiquan Qiao4.
Abstract
The core plays a crucial role in achieving high performance of linear hole transport materials (HTMs) toward the perovskite solar cells (PSCs). Most studies focused on the development of fused heterocycles as cores for HTMs. Nevertheless, nonfused heterocycles deserve to be studied since they can be easily synthesized. In this work, we reported a series of low-cost triphenylamine HTMs (M101-M106) with different nonfused cores. Results concluded that the introduced core has a significant influence on conductivity, hole mobility, energy level, and solubility of linear HTMs. M103 and M104 with nonfused oligothiophene cores are superior to other HTMs in terms of conductivity, hole mobility, and surface morphology. PSCs based on M104 exhibited the highest power conversion efficiency of 16.50% under AM 1.5 sun, which is comparable to that of spiro-OMeTAD (16.67%) under the same conditions. Importantly, the employment of M104 is highly economical in terms of the cost of synthesis as compared to that of spiro-OMeTAD. This work demonstrated that nonfused heterocycles, such as oligothiophene, are promising cores for high performance of linear HTMs toward PSCs.Entities:
Keywords: conductivity; hole mobility; hole-transporting materials; linear molecular; nonfused cores; perovskite solar cells
Year: 2018 PMID: 29741353 DOI: 10.1021/acsami.8b02090
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229