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◆ Chinese Journal of Chemistry2025-11-05· Non-blocking I/O

Magnesium‐Doped Nickel Oxide Hole Transport Layer Achieves High Efficiency and Stability Perovskite Solar Cells <sup>†</sup>

Tengfei Zhang, Liwei Chen, Renjie Li, Yuanhui Geng, Bo Chen, Qiang Wu, Wei Ma, Juan Hou

原始摘要(英文原文)· Original abstract
Comprehensive Summary Perovskite solar cells (PSCs) are promising thin‐film photovoltaic devices and achieve a high power conversion efficiency (PCE) of 27.3% (certified). Hole transport layer (HTL) composed of nickel oxide (NiO x ) and [4‐(3,6‐dimethyl‐9 H ‐carbazol‐9‐yl)butyl]phosphonic acid (Me‐4PACz) is extensively utilized in these devices. However, the dispersion and conductivity of NiO x are suboptimal, and it exhibits energy‐level mismatch. Meanwhile, the coverage of Me‐4PACz on NiO x is non‐uniform. Herein, we synthesized magnesium ion‐doped nickel oxide (Mg:NiO x ) with more surface hydroxyl groups to address these issues. More surface hydroxyl groups provided more binding sites for Me‐4PACz, resulting in a denser and more uniform coverage of Me‐4PACz. Consequently, fewer defects were present at the buried interface, and a better environment for the crystallization of perovskite (PVK) was established. Furthermore, Mg:NiO x /Me‐4PACz enabled better energy level alignment with PVK. The Mg:NiO x ‐based PSCs achieved a champion PCE of 25.86%, representing a notable improvement over the NiO x ‐based devices (24.51%). After 462 h of continuous illumination testing, the PSCs with Mg:NiO x retained 96.8% of their initial PCE, while those with NiO x only maintained 62.9% of their initial PCE. Thus, Mg:NiO x effectively enhanced both the PCE and stability of PSCs.
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Magnesium‐Doped Nickel Oxide Hole Transport Layer Achieves High Efficiency and Stability Perovskite Solar Cells <sup>†</sup> — 科研速览 Science Skim