TY - JOUR
T1 - Regulated Crystallization Through Intermolecular Interactions Bridging for Efficient Tin-Based Perovskite Solar Cells
AU - Yuan, Chengjian
AU - Wang, Junfang
AU - Yang, Yuqian
AU - Ma, Xiaolan
AU - Zhao, Zhenzhu
AU - Sun, Mulin
AU - Xu, Hao
AU - Pan, Yongle
AU - Hu, Juntao
AU - Mao, Kaitian
AU - Li, Yu
AU - Ding, Honghe
AU - Luo, Deying
AU - Yang, Yingguo
AU - Zhu, Junfa
AU - Abate, Antonio
AU - Xu, Jixian
AU - Lu, Zhenghong
AU - Meng, Xiangyue
AU - Jen, Alex K.Y.
AU - Hu, Qin
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2025/2/25
Y1 - 2025/2/25
N2 - Tin halide perovskite (THP) has emerged as a promising lead-free material for high-performance solar cells, attracting significant attention for their potential use for energy conversion. However, the rapid crystallization of THP due to its high Lewis acidity and easy oxidation of Sn2+ leads to poor morphology and rampant defects in the resulting perovskite films. These strongly hamper the advances in efficiency and stability in THP solar cells. Herein, a comprehensive crystallization regulation strategy is demonstrated by introducing methyl carbazate (C2H6N2O2, MeC) to regulate the crystallization kinetics of perovskite through inter-molecular interactions. The coordination bonds (O…Sn) and hydrogen bonds (N─H…O) between MeC and perovskite bridge the perovskite lattice together, helping suppress the oxidation of Sn2+, meanwhile, restraining the fast crystallization of perovskite in the precursor solution, by enhancing nucleation sites. More importantly, the connection by MeC can reduce the deep-level trap state defect density, significantly restraining non-radiative recombination and improving the carrier lifetime. Consequently, this facile strategy offers valuable insights into THP crystallization kinetics and allows an enhanced high power conversion efficiency from 10.43% to 14.02% to be achieved with good stability.
AB - Tin halide perovskite (THP) has emerged as a promising lead-free material for high-performance solar cells, attracting significant attention for their potential use for energy conversion. However, the rapid crystallization of THP due to its high Lewis acidity and easy oxidation of Sn2+ leads to poor morphology and rampant defects in the resulting perovskite films. These strongly hamper the advances in efficiency and stability in THP solar cells. Herein, a comprehensive crystallization regulation strategy is demonstrated by introducing methyl carbazate (C2H6N2O2, MeC) to regulate the crystallization kinetics of perovskite through inter-molecular interactions. The coordination bonds (O…Sn) and hydrogen bonds (N─H…O) between MeC and perovskite bridge the perovskite lattice together, helping suppress the oxidation of Sn2+, meanwhile, restraining the fast crystallization of perovskite in the precursor solution, by enhancing nucleation sites. More importantly, the connection by MeC can reduce the deep-level trap state defect density, significantly restraining non-radiative recombination and improving the carrier lifetime. Consequently, this facile strategy offers valuable insights into THP crystallization kinetics and allows an enhanced high power conversion efficiency from 10.43% to 14.02% to be achieved with good stability.
KW - cyrstallization kinetics
KW - in situ characterization
KW - perovskite solar cells
KW - tin-based perovskite
UR - https://www.scopus.com/pages/publications/85213731078
U2 - 10.1002/smll.202408302
DO - 10.1002/smll.202408302
M3 - 文章
C2 - 39998942
AN - SCOPUS:85213731078
SN - 1613-6810
VL - 21
JO - Small
JF - Small
IS - 8
M1 - 2408302
ER -