Conformational Elasticity at the Buried Interface: 26.89% Perovskite Solar Cells and 23.95% Certified Modules
Abstract
ABSTRACT Conventional self‐assembled monolayers (SAMs) are conformationally rigid. They cannot buffer interfacial strain during rapid perovskite crystallization, limiting both film quality and device stability. We introduce a conformational engineering strategy using 2‐benzhydrylidene‐succinic acid (BSA), a rigid diphenylmethylene anchor with flexible succinic acid chains to create an elastic buried interface. Atomic simulations show BSA acts as a compressible buffer, delaying stress accumulation by ∼6 Å under displacement. This dynamic strain dissipation improves heterojunction contact and enhances hole extraction and transport. BSA‐modified p‐i‐n devices reach 26.89% (0.045 cm 2 , certified 26.52%). Large‐area modules (22.95 cm 2 ) deliver 24.30% (certified 23.95%), which is among the highest certified values for this area. The devices retain 90% of initial efficiency after 316 h of diurnal cycling and 88% after 300 extreme transient thermal shock cycles from ‐20 °C to 100 °C. This conformational design integrates mechanical compliance with electronic functionality in scalable perovskite photovoltaics.
Article Details
Authors (11)
Chenguang Zhou
Yibo Xu
Yunlong Yang
Yue Li
Kaihuai Du
Xiangli Wen
Institute of Technology for Carbon Neutralization School of Physical Science and Technology Yangzhou University Yangzhou Jiangsu P. R. China
Mengde Zhai
Aili Wang
Lvzhou Li
Ningyi Yuan
School of Materials Science and Engineering Jiangsu Collaborative Innovation Center for Photovoltaic Science and Engineering Changzhou University Changzhou P. R. China
Jianning Ding