TY - JOUR
T1 - Buried Interface Regulation with a Supramolecular Assembled Template Enables High-Performance Perovskite Solar Cells for Minimizing the VOC Deficit
AU - Wang, Zhenrong
AU - Liang, Qiong
AU - Li, Mingliang
AU - Sun, Guohao
AU - Li, Shiang
AU - Zhu, Tao
AU - Han, Yu
AU - Xia, Hao
AU - Ren, Zhiwei
AU - Yu, Bingcheng
AU - Zhang, Jiyao
AU - Ma, Ruijie
AU - Hrisheekesh, Thachoth Chandran
AU - Cheng, Lei
AU - Zhang, Liren
AU - Li, Dongyang
AU - Chen, Shuyan
AU - Lu, Xinhui
AU - Yan, Chang
AU - Azmi, Randi
AU - Liu, Kuan
AU - Tang, Jinyao
AU - Li, Gang
N1 - Publisher Copyright:
© 2025 The Author(s). Advanced Materials published by Wiley-VCH GmbH.
PY - 2025/6/19
Y1 - 2025/6/19
N2 - Despite the rapid development of perovskite solar cells (PSCs) in the past decade, the open-circuit voltage (VOC) of PSCs still lags behind the theoretical Shockley–Queisser limit. Energy-level mismatch and unwanted nonradiative recombination at key interfaces are the main factors detrimental to VOC. Herein, a perovskite crystallization-driven template is constructed at the SnO2/perovskite buried interface through a self-assembled amphiphilic phosphonate derivative. The highly oriented supramolecular template grows from an evolutionary selection growth via solid–solid phase transition. This strategy induces perovskite crystallization into a highly preferred (100) orientation toward out-of-plane direction and facilitated carrier extraction and transfer due to the elimination of energy barrier. This self-assembly process positively passivates the intrinsic surface defects at the SnO2/perovskite interface through the functionalized moieties, a marked contrast to the passive effect achieved via incidental contacts in conventional passivation methods. As a result, PSCs with buried interface modification exhibit a promising PCE of 25.34%, with a maximum VOC of 1.23 V, corresponding to a mere 0.306 V deficit (for perovskite bandgap of 1.536 eV), reaching 97.2% of the theoretical VOC limit. This strategy spontaneously improves the long-term operational stability of PSCs under thermal and moisture stress (ISOS-L-3: MPP, 65 °C, 50% RH, T92 lifetime exceeding 1200 h).
AB - Despite the rapid development of perovskite solar cells (PSCs) in the past decade, the open-circuit voltage (VOC) of PSCs still lags behind the theoretical Shockley–Queisser limit. Energy-level mismatch and unwanted nonradiative recombination at key interfaces are the main factors detrimental to VOC. Herein, a perovskite crystallization-driven template is constructed at the SnO2/perovskite buried interface through a self-assembled amphiphilic phosphonate derivative. The highly oriented supramolecular template grows from an evolutionary selection growth via solid–solid phase transition. This strategy induces perovskite crystallization into a highly preferred (100) orientation toward out-of-plane direction and facilitated carrier extraction and transfer due to the elimination of energy barrier. This self-assembly process positively passivates the intrinsic surface defects at the SnO2/perovskite interface through the functionalized moieties, a marked contrast to the passive effect achieved via incidental contacts in conventional passivation methods. As a result, PSCs with buried interface modification exhibit a promising PCE of 25.34%, with a maximum VOC of 1.23 V, corresponding to a mere 0.306 V deficit (for perovskite bandgap of 1.536 eV), reaching 97.2% of the theoretical VOC limit. This strategy spontaneously improves the long-term operational stability of PSCs under thermal and moisture stress (ISOS-L-3: MPP, 65 °C, 50% RH, T92 lifetime exceeding 1200 h).
KW - buried interface
KW - crystallization-driven template
KW - dipole moment
KW - nonradiative recombination
KW - perovskite solar cells
KW - S–Q limit, supramolecular assembly
UR - https://www.scopus.com/pages/publications/105002445760
U2 - 10.1002/adma.202418011
DO - 10.1002/adma.202418011
M3 - Journal article
AN - SCOPUS:105002445760
SN - 0935-9648
VL - 37
SP - 1
EP - 10
JO - Advanced Materials
JF - Advanced Materials
IS - 24
M1 - 2418011
ER -