TY - JOUR
T1 - Enhancing Phonon Group Velocities and Interfacial Heat Conduction for Efficient and Stable Perovskite Solar Cells
AU - Wu, Xing
AU - Chen, Yu
AU - Shen, Yang
AU - Du, Er Wei
AU - Chen, Hao
AU - Liu, Songlin
AU - Peng, Yang
AU - Zhou, Jing
AU - Duan, Yuwei
AU - Chen, Yao
AU - Pu, Shengyan
AU - Wu, Yihui
AU - Peng, Qiang
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/12
Y1 - 2026/12
N2 - The inherently low thermal conductivity of conventional hole-transport layers (HTLs) in inverted perovskite solar cells (PSCs) introduces a substantial discrepancy in interlayer heat-transfer dynamics, leading to detrimental heat accumulation and nonradiative recombination. Herein, we develop a spinel-type semiconductor of CuBi2O4, and integrate it into a composite HTL architecture to regulate heat conduction for the first time. Leveraging enhanced phonon group velocities, the CuBi2O4-based composite HTL achieves exceptional thermal compatibility with the perovskite absorber, demonstrating enhanced heat conduction and optimal thermal-expansion coefficient alignment. These synergistic effects significantly delay hot-carrier relaxation and reduce excess energy dissipation by approximately 10-fold. Consequently, we obtain high-quality perovskite films with ordered orientation and released residual strain, yielding an impressive power conversion efficiency (PCE) of 27.18% (certified 26.83%). Remarkably, these phonon-engineered devices maintain 90.1%, 82.3%, 85.6% and 93.7% of their initial PCEs under ISOS-D-2Ⅰ, ISOS-D-3, ISOS-T-1 and ISOS-L-1 conditions for 2000 h, respectively.
AB - The inherently low thermal conductivity of conventional hole-transport layers (HTLs) in inverted perovskite solar cells (PSCs) introduces a substantial discrepancy in interlayer heat-transfer dynamics, leading to detrimental heat accumulation and nonradiative recombination. Herein, we develop a spinel-type semiconductor of CuBi2O4, and integrate it into a composite HTL architecture to regulate heat conduction for the first time. Leveraging enhanced phonon group velocities, the CuBi2O4-based composite HTL achieves exceptional thermal compatibility with the perovskite absorber, demonstrating enhanced heat conduction and optimal thermal-expansion coefficient alignment. These synergistic effects significantly delay hot-carrier relaxation and reduce excess energy dissipation by approximately 10-fold. Consequently, we obtain high-quality perovskite films with ordered orientation and released residual strain, yielding an impressive power conversion efficiency (PCE) of 27.18% (certified 26.83%). Remarkably, these phonon-engineered devices maintain 90.1%, 82.3%, 85.6% and 93.7% of their initial PCEs under ISOS-D-2Ⅰ, ISOS-D-3, ISOS-T-1 and ISOS-L-1 conditions for 2000 h, respectively.
UR - https://www.scopus.com/pages/publications/105048100361
U2 - 10.1038/s41467-026-75825-9
DO - 10.1038/s41467-026-75825-9
M3 - Article
C2 - 42481485
AN - SCOPUS:105048100361
SN - 2041-1723
VL - 17
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 8874
ER -