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◆ Nano-Micro Letters2026-07-31· Materials science

Interface Contact Optimization via Phosphomolybdic Acid Enables 24.9% Efficiency in MoOX-Based Silicon Solar Cells

Shaopeng Chen, Qian Kang, Xiqi Yang, Hao Zhang, Jingjie Li, Wanyu Lu, Linfeng Yang, Tinghao Liu, Dayong Yuan, Zilong Zheng, Hui Yan, Yongzhe Zhang

原始摘要(英文原文)· Original abstract
Abstract The development of cost-effective carrier-selective passivating contacts is critical for enhancing the commercial feasibility of silicon compound solar cells. Molybdenum oxide (MoO X ) has garnered considerable interest as a promising hole transport layer (HTLs). A key advantage of MoO X is high work function, in addition to the low-cost processability. However, in silicon photovoltaics, MoO X -based p -type contacts face fundamental limitations at hydrogenated amorphous silicon (i-a-Si:H)/MoO X interface, where oxygen vacancy defects lower work function, as well as, weak van der Waals-dominated interactions impair charge carry transport. To address these challenges, we introduced an ultrathin phosphomolybdic acid (PMA) interlayer at the i-a-Si:H/MoO X interface. PMA passivated oxygen vacancy defects, resulting in a notable improvement in open-circuit voltage from 713 to 730 mV, and 0.11 eV work function elevation via dipole formation; meanwhile, PMA strengthened the interfacial bonding energy, reducing saturation current density and contact resistance by 63% and 24%, respectively, contributing to a fill factor enhancement from 83.7% to 84.9%. In the end, we demonstrated a record efficiency of 24.9% for MoO X -based silicon solar cells, which provides valuable insights for developing high-performance MoO X HTL devices for dopant-free p -type contact technologies.
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Interface Contact Optimization via Phosphomolybdic Acid Enables 24.9% Efficiency in MoOX-Based Silicon Solar Cells — 科研速览 Science Skim