材料科学
制氢
微型反应器
异质结
热电效应
光电子学
微流控
分解水
光伏系统
光催化
热电发电机
能量转换效率
发电
载流子
氢
纳米技术
太阳能
可再生能源
余热
蚀刻(微加工)
能量转换
工作(物理)
发电机(电路理论)
工艺工程
作者
Bishal Kumar Nahak,S Sovan Kumar,J R Chowdhury,Manish Kumar Sharma,Parag Parashar,Uday Kumar Singh,Arshad Khan,Ravindra Joshi,Meenakshi Ray,Fan‐Gang Tseng,Zong‐Hong Lin
标识
DOI:10.1002/aenm.202505382
摘要
ABSTRACT Harnessing the full solar spectrum for sustainable hydrogen production remains a major challenge in photoelectrocatalytic (PEC) water splitting. Herein, we present a cascaded microfluidic PEC reactor integrated with a thermoelectric generator (TEG), achieving a Solar‐to‐Hydrogen (STH) conversion efficiency of 28%. The device combines three synergistic elements: (i) Ti 3 C 2 ‐CdS heterostructure catalysts that enhance charge separation and suppress recombination; (ii) a planar microfluidic reactor that ensures uniform light penetration, laminar flow, and efficient mass transport; and (iii) a Bi 2 Te 3 ‐based TEG module that harvests solar waste heat to provide supplemental bias for overcoming kinetic barriers. The cascaded architecture enables sequential light harvesting across four reactors, leading to cumulative hydrogen yields exceeding 10 890 µmol g −1 h −1 , while simultaneously enabling rapid water treatment. This work establishes a scalable, self‐powered, and multifunctional platform for decentralized clean energy generation and water purification by integrating thermal‐electrics and PEC pathways into a single compact device.
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