材料科学
光热治疗
蒸发
膜
水运
传热
热导率
热的
化学工程
能量转换效率
热传导
石墨烯
纳米技术
热能
太阳能
能量转换
吸收(声学)
热管
工作(物理)
强化传热
太阳能集热器中的纳米流体
余热
光热效应
水流
光电子学
热效率
碳纳米管
热传递
焦耳加热
作者
Yang Su,Jun Jin,Zhongwang Zhang,Hong‐Yi Tu,Jiachen Guo,Minghui Zhang,Bo Peng,Min Chen,Limin Wu
出处
期刊:Small
[Wiley]
日期:2025-11-25
卷期号:22 (3): e12437-e12437
标识
DOI:10.1002/smll.202512437
摘要
The global freshwater crisis has driven the development of solar-driven water evaporation. Efficient solar-driven water evaporation requires both effective heat localization and continuous water supply at the evaporation interface, which remain challenging due to disordered thermal pathways and inefficient fluid transport. Herein, an ultrathin (≈130 µm), flexible polyurethane (TPU) membrane integrated with dual transport pathways is reported for water transport and heat conduction, enabling synergistic thermal management and hydration. The membrane is embedded with vertically aligned MoS2 nanoflowers and graphene nanoplatelets (GNPs), and through-plane micro-channels by a classic non-solvent-induced phase separation strategy. GNPs serve as thermal conductive bridges, promoting through-plane heat transfer and guiding the orientation of MoS2. Despite the modest filler content (10 wt.%), the optimized membrane exhibits broadband solar absorption (94.3%), high photothermal conversion efficiency (96.1%), and a 2.5-fold increase in through-plane thermal conductivity compared to GNP-free membranes. Upon surface hydrophilic modification, the membrane achieves a solar evaporation rate of 2.62 kg·m-2·h-1 under one sun, with an energy conversion efficiency of 93.5%, attributable to a sharp reduction in total heat loss from 9.1% to 2%. This work highlights a material- and architecture-driven strategy for constructing efficient photothermal membranes, paving ways for high-performance and portable solar water evaporators.
科研通智能强力驱动
Strongly Powered by AbleSci AI