| Literature DB >> 28837311 |
Miao Duan1, Chengbo Tian1, Yue Hu1, Anyi Mei1, Yaoguang Rong1, Yuli Xiong1, Mi Xu1, Yusong Sheng1, Pei Jiang1, Xiaomeng Hou1, Xiaotong Zhu1, Fei Qin1, Hongwei Han1.
Abstract
Work function of carbon electrodes is critical in obtaining high open-circuit voltage as well as high device performance for carbon-based perovskite solar cells. Herein, we propose a novel strategy to upshift work function of carbon electrode by incorporating boron atom into graphite lattice and employ it in printable hole-conductor-free mesoscopic perovskite solar cells. The high-work-function boron-doped carbon electrode facilitates hole extraction from perovskite as verified by photoluminescence. Meanwhile, the carbon electrode is endowed with an improved conductivity because of a higher graphitization carbon of boron-doped graphite. These advantages of the boron-doped carbon electrode result in a low charge transfer resistance at carbon/perovskite interface and an extended carrier recombination lifetime. Together with the merit of both high work function and conductivity, the power conversion efficiency of hole-conductor-free mesoscopic perovskite solar cells is increased from 12.4% for the pristine graphite electrode-based cells to 13.6% for the boron-doped graphite electrode-based cells with an enhanced open-circuit voltage and fill factor.Entities:
Keywords: boron doping; carbon electrode; mesoscopic; perovskite solar cells; work function
Year: 2017 PMID: 28837311 DOI: 10.1021/acsami.7b05689
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229