材料科学
降级(电信)
催化作用
介孔材料
超短脉冲
化学工程
蒸发
吸附
汽化
过硫酸盐
纳米技术
双金属片
瓶颈
饮用水净化
联轴节(管道)
过程(计算)
环境修复
热的
工作(物理)
化学
双酚A
动能
纳米颗粒
飞秒
活性炭
平面的
作者
Fan‐Zhen Jiao,Xiaoyang Fang,Sheng‐Xing Hou,Zi Wang,Wenbo You,Zhenzhong Yang,Zhong‐Zhen Yu,Jin Qu
标识
DOI:10.1007/s40820-026-02249-x
摘要
Abstract Solar interfacial evaporation has undergone rapid development in recent years, yet its overall performance has reached a plateau due to limited advances in solar-thermal materials. Herein, we propose a synergistic nano-confinement and physical-field–modulation strategy that enables concurrent acceleration of solar-driven evaporation of water and on-site remediation of organic pollutants. Implemented in hollow mesoporous carbon nanocages integrated with Fe–N 4 catalytic sites and inner wall plasmonic Au nanoparticles, the system couples mesoporous confinement with localized thermal and pressure perturbations to transform bulk water into thermodynamically activated intermediate states and substantially reduce the effective vaporization enthalpy. This integrated framework delivers high evaporation rates of 2.56 kg m −2 h −1 in planar devices and 6.84 kg m −2 h −1 in 3D architectures under one-sun irradiation, with a kinetic enhanced Hertz–Knudsen–Schrage–derived evaporation coefficient. Simultaneously, the Fe–N 4 sites enable non-radical peroxymonosulfate activation for ultrafast degradation of bisphenol A, achieving a rate of 182.5 L g −1 min −1 . This work establishes an ingenious strategy for coupling water-state regulation and catalytic pollutant degradation to break the performance bottleneck of solar-thermal purification.
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