| Literature DB >> 33410652 |
Nabilah Alias1,2, Akrajas Ali Umar1, Nurul Ain Abd Malek1, Kai Liu3, Xiaoguo Li3, Nur Adliha Abdullah1, Mohd Mustaqim Rosli1, Mohd Yusri Abd Rahman1, Zejiao Shi3, Xin Zhang4, Haijuan Zhang3, Fengcai Liu3, Jiao Wang3, Yiqiang Zhan3,4.
Abstract
A deficiency in the photoelectrical dynamics at the interface due to the surface traps of the TiO2 electron transport layer (ETL) has been the critical factor for the inferiority of the power conversion efficiency (PCE) in the perovskite solar cells. Despite its excellent energy level alignment with most perovskite materials, its large density of surface defect as a result of sub lattice vacancies has been the critical hurdle for an efficient photovoltaic process in the device. Here, we report that atoms thick 2D TiS2 layer grown on the surface of a (001) faceted and single-crystalline TiO2 nanograss (NG) ETL have effectively passivated the defects, boosting the charge extractability, carrier mobility, external quantum efficiency, and the device stability. These properties allow the perovskite solar cells (PSCs) to produce a PCE as high as 18.73% with short-circuit current density (Jsc), open-circuit voltage (Voc), and fill-factor (FF) values as high as 22.04 mA/cm2, 1.13 V, and 0.752, respectively, a 3.3% improvement from the pristine TiO2-NG-based PSCs. The present approach should find an extensive application for controlling the photoelectrical dynamic deficiency in perovskite solar cells.Entities:
Keywords: 2D TiS2 atomic layer; TiO2 nanograss; defect passivation; perovskite solar cells; photoelectrical dynamic
Year: 2021 PMID: 33410652 DOI: 10.1021/acsami.0c20137
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229