纳米技术
光电流
分解水
异质结
材料科学
光催化
软件部署
太阳能转换
可扩展性
模块化设计
载流子
光电化学
太阳能燃料
转化式学习
光电化学电池
钥匙(锁)
催化作用
光伏系统
杰纳斯
氢
清洁能源
制氢
析氧
金属有机骨架
串联
导电体
可持续能源
太阳能
纳米结构
作者
Vijay A. Mane,Dnyaneshwar V. Dake,Nita D. Raskar,R.B. Sonpir,Kartik M. Chavan,Shivaji G. Munde,Pavan R. Kayande,Jagruti Pawar,Sandeep B. Somvanshi,B. N. Dole
出处
期刊:Energy & Fuels
[American Chemical Society]
日期:2026-04-16
卷期号:40 (17): 9204-9237
被引量:1
标识
DOI:10.1021/acs.energyfuels.6c00130
摘要
Photoelectrochemical (PEC) water splitting represents a compelling pathway for sustainable hydrogen production, yet its large-scale deployment remains constrained by inefficient charge separation, sluggish interfacial kinetics, and limited material stability. Metal–organic frameworks (MOFs) have recently emerged as transformative photoelectrode platforms owing to their modular chemistry, ultrahigh surface areas (>1000 m2 g–1), and precisely tunable electronic structures. This review critically examines the evolution of MOFs from photoactive frameworks to high-performance PEC photoelectrodes, emphasizing mechanistic insights that govern light absorption, carrier dynamics, and catalytic reaction pathways. Quantitative analysis reveals that MOF–semiconductor heterojunctions and MOF-derived oxides can deliver photocurrent densities exceeding 6–7 mA cm–2 at 1.23 V vs RHE, with onset potential shifts up to 400 mV and applied bias photon-to-current efficiencies approaching 1%. Advanced architectures─including S-scheme/Z-scheme junctions, defect-engineered MOFs, and conductive MOF-derived catalysts─demonstrate hydrogen evolution rates as high as 68 mmol g–1 h–1 and solar-to-hydrogen efficiencies nearing 10–11% in tandem configurations. By correlating framework chemistry, band energetics, and interfacial charge-transfer mechanisms, this review establishes design principles for next-generation MOF photoelectrodes and outlines scalable strategies to surpass the 10% STH benchmark, positioning MOFs as key enablers for practical solar fuel technologies.
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