TY - JOUR
T1 - Halogen-Acupuncture Stabilization of Pure-Iodide Wide-Bandgap Perovskites for Efficient and Stable Solar Cells under Simulated Low-Earth-Orbit Cycling
AU - Li, Fengyuan
AU - Yang, Yang
AU - Gómez, Sergio Catalán
AU - Li, Yezhi
AU - Guo, Pengfei
AU - Wan, Shuyuan
AU - Yang, Kexin
AU - Xiao, Xu
AU - Inglés Cerrillo, Julia
AU - María Ulloa, Jose
AU - Mukhametkarimov, Yerzhan
AU - Hierro, Adrian
AU - Chen, Ruihao
AU - Wang, Hongqiang
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Pure-iodide wide-bandgap (WBG) perovskites are promising top-cell absorbers for tandem photovoltaics, benefiting from their intrinsic immunity to the halide phase segregation that plagues mixed-halide counterparts. However, their practical deployment, particularly in space, is severely impeded by iodine migration and iodine-loss-induced degradation. Here, we propose a halogen-acupuncture-enabled iodide anchoring strategy, in which halogen-bond interactions act as site-specific “molecular needles” to immobilize iodide species. By introducing 2-halonaphthalene molecules (2XN, X = Cl, Br, I), strong halogen bonding increases the formation energy of iodine vacancies and inhibits iodine-ion-related degradation. Among them, 2-iodonaphthalene (2IN) delivers the most pronounced stabilization effect while concurrently regulating crystallization kinetics, producing films with enhanced crystallinity, reduced residual strain, and superior electronic quality. Consequently, the optimized pure-iodide WBG perovskite solar cells deliver a champion power conversion efficiency of 22.41% with reduced hysteresis, while 1 cm2 devices achieve a high efficiency of 21.41%. More importantly, the 2IN-treated perovskite solar cells (PSCs) exhibit remarkable durability under both light on-off cycling and simulated low-Earth-orbit (LEO) light-thermal cycling, retaining 80% of the initial efficiency after 135 LEO cycles between 240 and 330 K. These results highlight the potential of this iodide-anchoring strategy for space photovoltaic applications.
AB - Pure-iodide wide-bandgap (WBG) perovskites are promising top-cell absorbers for tandem photovoltaics, benefiting from their intrinsic immunity to the halide phase segregation that plagues mixed-halide counterparts. However, their practical deployment, particularly in space, is severely impeded by iodine migration and iodine-loss-induced degradation. Here, we propose a halogen-acupuncture-enabled iodide anchoring strategy, in which halogen-bond interactions act as site-specific “molecular needles” to immobilize iodide species. By introducing 2-halonaphthalene molecules (2XN, X = Cl, Br, I), strong halogen bonding increases the formation energy of iodine vacancies and inhibits iodine-ion-related degradation. Among them, 2-iodonaphthalene (2IN) delivers the most pronounced stabilization effect while concurrently regulating crystallization kinetics, producing films with enhanced crystallinity, reduced residual strain, and superior electronic quality. Consequently, the optimized pure-iodide WBG perovskite solar cells deliver a champion power conversion efficiency of 22.41% with reduced hysteresis, while 1 cm2 devices achieve a high efficiency of 21.41%. More importantly, the 2IN-treated perovskite solar cells (PSCs) exhibit remarkable durability under both light on-off cycling and simulated low-Earth-orbit (LEO) light-thermal cycling, retaining 80% of the initial efficiency after 135 LEO cycles between 240 and 330 K. These results highlight the potential of this iodide-anchoring strategy for space photovoltaic applications.
KW - halogen-acupuncture
KW - ion migration
KW - perovskites solar cells
KW - pure-iodide wide-bandgap
KW - stability
UR - https://www.scopus.com/pages/publications/105047408620
U2 - 10.1002/adfm.77692
DO - 10.1002/adfm.77692
M3 - 文章
AN - SCOPUS:105047408620
SN - 1616-301X
JO - Advanced Functional Materials
JF - Advanced Functional Materials
ER -