TY - JOUR
T1 - Preparation of Micron-sized Methylamine-PbCl3 perovskite grains by controlling phase transition engineering for selective Ultraviolet-harvesting transparent photovoltaics
AU - Liu, You
AU - Li, Yufan
AU - Xu, Wenxin
AU - Chen, Xianglin
AU - Wang, Jungan
AU - Yan, Suhao
AU - Bao, Jusheng
AU - Qin, Tianshi
N1 - Publisher Copyright:
© 2021 Elsevier Inc.
PY - 2022/2
Y1 - 2022/2
N2 - Selective ultraviolet-harvesting transparent perovskite solar cells (T-PSCs) have attracted great interest because of their high transmittance and unique photovoltaic properties, especially in the fields of smart windows for power generation and building glass. However, owing to the unsatisfactory solubility of PbCl2 in most conventional solvents, preparing transparent methylammonium lead chloride (MAPbCl3) films with high quality and sufficient thickness by conventional methods poses a substantial challenge for their application deployment in T-PSCs. In this work, two novel strategies based on an ion-exchange procedure for controlling phase transition engineering (CPTE) are proposed. For CPTE-2, an optimized cubic phase MAPbCl3 film with a large grain size and high full coverage is prepared by transforming the tetragonal phase MAPbI3 precursor into the cubic phase MAPbCl3. Establishing relevant models based on crystal parameters investigates the formation mechanism of this high-quality MAPbCl3 film. Accordingly, the resultant T-PSCs exhibit remarkable film quality and micron-sized grains and reach an optimum efficiency of 0.33% (JSC = 0.66 mA cm−2, VOC = 1.14 V, and FF = 43.72%).
AB - Selective ultraviolet-harvesting transparent perovskite solar cells (T-PSCs) have attracted great interest because of their high transmittance and unique photovoltaic properties, especially in the fields of smart windows for power generation and building glass. However, owing to the unsatisfactory solubility of PbCl2 in most conventional solvents, preparing transparent methylammonium lead chloride (MAPbCl3) films with high quality and sufficient thickness by conventional methods poses a substantial challenge for their application deployment in T-PSCs. In this work, two novel strategies based on an ion-exchange procedure for controlling phase transition engineering (CPTE) are proposed. For CPTE-2, an optimized cubic phase MAPbCl3 film with a large grain size and high full coverage is prepared by transforming the tetragonal phase MAPbI3 precursor into the cubic phase MAPbCl3. Establishing relevant models based on crystal parameters investigates the formation mechanism of this high-quality MAPbCl3 film. Accordingly, the resultant T-PSCs exhibit remarkable film quality and micron-sized grains and reach an optimum efficiency of 0.33% (JSC = 0.66 mA cm−2, VOC = 1.14 V, and FF = 43.72%).
KW - Micron-sized grains
KW - Phase transition
KW - Transparent photovoltaics
KW - cubic MAPbCl perovskite
KW - tetragonal MAPbI perovskite
UR - http://www.scopus.com/inward/record.url?scp=85115813063&partnerID=8YFLogxK
U2 - 10.1016/j.jcis.2021.09.054
DO - 10.1016/j.jcis.2021.09.054
M3 - 文章
C2 - 34583030
AN - SCOPUS:85115813063
SN - 0021-9797
VL - 607
SP - 1083
EP - 1090
JO - Journal of Colloid and Interface Science
JF - Journal of Colloid and Interface Science
ER -