表面工程
材料科学
钙钛矿(结构)
纳米晶
卤化物
化学工程
拉曼光谱
纳米技术
光化学
光谱学
分子工程
纳米材料
光伏
表面增强拉曼光谱
表面改性
相(物质)
催化作用
纳米颗粒
作者
Subarna Biswas,Samhita Sukanya,Jit Satra,Shagun Singh,Rajashree P. Mishra,Surajit Mondal,Tirthankar Saha,N. V. S. Praneeth,Nitish Kumar,Saumyakanti Khatua,Naiwrit Karmodak,Yatendra S. Chaudhary,Nimai Mishra
出处
期刊:Small
[Wiley]
日期:2026-08-26
卷期号:: e75448-e75448
摘要
ABSTRACT Lead halide perovskite nanocrystals (PNCs) combine strong light harvesting with favorable excited‐state properties for solar‐fuel synthesis, yet their application in CO 2 photoreduction is limited by rapid photoinduced surface degradation. Here, we overcome this limitation through cooperative cation‐ligand engineering of CsPbBr 3 PNCs by integrating surface‐associated Zn 2 + with short‐chain isophthalic acid (IPhA). This dual surface coordination reinforces halide bonding, stabilizes undercoordinated Pb sites, suppresses defect propagation, prolongs carrier lifetime, increases carrier density, and reduces charge‐transfer resistance. Mechanistic investigations, including operando Raman spectroscopy and CO‐stripping voltammetry, reveal sustained surface‐bound intermediates and favorable CO adsorption–desorption behavior during CO 2 reduction. Consequently, the Zn‐IPhA engineered PNCs sustain continuous CO and CH 4 evolution for 10 h under simulated solar irradiation and retain high activity over three consecutive 10 h cycles with only marginal performance loss. The engineered PNCs deliver cocatalyst‐free CO evolution rates of ∼55 and ∼64 µmol g −1 h −1 together with CH 4 evolution rates of ∼20 and ∼26 µmol g −1 h −1 under white‐light (1 Sun) and UV irradiation, respectively, representing the highest reported productivities among 3D PNC photocatalysts and surpassing many cocatalyst‐integrated systems. These findings establish cooperative surface coordination engineering as a general strategy for developing photon‐resilient perovskite photocatalysts for solar‐fuel generation.
科研通智能强力驱动
Strongly Powered by AbleSci AI