光热治疗
降级(电信)
可重用性
环境修复
催化作用
化学
材料科学
光催化
化学工程
太阳能
地下水修复
废水
纳米技术
污染物
饮用水净化
水处理
污水处理
化学能
环境友好型
纳米结构
生物量(生态学)
污染
纳米复合材料
可再生能源
多孔性
光热效应
纳米颗粒
制浆造纸工业
环境化学
光伏系统
环境科学
聚氨酯
作者
Manish Kumar Sharma,Bishal Kumar Nahak,Parag Parashar,Uday Kumar Singh,Arshad Khan,Jaba Roy Chowdhury,Parthasarathi Pal,Dongwhi Choi,Hae Gyun Lim,Yu‐Lun Chueh,Zong‐Hong Lin
标识
DOI:10.1002/advs.202515018
摘要
Abstract The escalating challenge of water contamination by recalcitrant organic pollutants and pathogens calls for sustainable, solar‐powered technologies that operate without external energy or chemical inputs. Such systems require multifunctional materials capable of harvesting broad‐spectrum sunlight to generate reactive oxygen species (ROS) for simultaneous degradation and disinfection. Conventional photocatalysts are hindered by their limited spectral absorption and rapid charge recombination, which restricts their practical efficacy in real‐world applications. To overcome these challenges, we engineered a hybrid Bi 2 Te 3 @CdS nanostructure incorporated into a porous polyurethane (PU) foam scaffold, facilitating synergistic photothermal and thermocatalytic efficacy under comprehensive solar illumination. The hybrid architecture facilitates effective separation of photogenerated charge carriers, markedly diminishing recombination losses and augmenting the production of ROS, such as •O 2 − , •OH, and H 2 O 2 . Concurrently, Bi 2 Te 3 functions as a thermoelectric absorber that effectively transforms NIR‐induced heat into catalytic activation energy, thereby enhancing degradation kinetics. This dual‐mode activation causes organic pollutants (such as dyes and pesticides) to mineralize quickly and inactivate E. coli and S. aureus with >99% photothermal assistance. High photostability and reusability enable the material to maintain its activity over multiple cycles without appreciable degradation. By synergistically integrating broadband solar harvesting, efficient ROS generation, and thermocatalytic activation, this study presents an energy‐autonomous strategy for water remediation and sustained antimicrobial defense, offering significant potential for public health benefits.
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