Chenchao Xie, Shuai You, Melissa A Davis, Ross A Kerner, Kelly Schutt, Ryan A DeCrescent, Tianran Liu, Manuel A Rodriguez, Rosemary C Bramante, Christian Velez, Mirzo Mirzokarimov, Marc J Migliozzi, Todd Russell, Adam Lorenz, Benjia Dak Dou, Michael Owen-Bellini, Axel F Palmstrom, Duong Nguyen Minh, Michael D McGehee, Joseph J Berry, Laura T Schelhas, Kai Zhu, Joseph M Luther
Nickel oxide (NiOx) is a common hole transport layer (HTL) in perovskite photovoltaics, but the chemical reactivity of NiOx surfaces accelerates degradation when contacting perovskites. We developed an ultrathin, conformal tin oxide (SnOx) interlayer to suppress interfacial reactivity between NiOx and perovskite. SnOx is typically an electron transport layer, but we show that the energy alignment can be modified for hole extraction using molecules with dipoles. This synergy yielded high efficiency in perovskite photovoltaic devices and showed an ~10x improvement in T90 lifetime in open-circuit conditions under AM1.5G at 65°C. This structure also improves resilience to thermomechanical durability, as minimodules retained 95.7% of their initial performance after 1000 thermal cycles (-65° to 85°C), highlighting the importance of interfaces for robust perovskite photovoltaic modules.