材料科学
聚偏氟乙烯
膜
压电
纳米复合材料
石墨烯
环境修复
化学工程
纳米技术
复合材料
聚合物
工程类
污染
生态学
遗传学
生物
作者
Tsung‐Han Huang,Xin‐Yuan Tian,Yiyun Chen,Januar Widakdo,Hannah Faye M. Austria,Owen Setiawan,T.M. Subrahmanya,Wei‐Song Hung,Da‐Ming Wang,Ching‐Yuan Chang,Chih‐Feng Wang,Chien‐Chieh Hu,Chia‐Her Lin,Yu‐Lun Lai,Kueir‐Rarn Lee,Juin‐Yih Lai
标识
DOI:10.1002/adfm.202308321
摘要
Abstract Water and energy shortages are interdependent major worldwide issues that cannot be disregarded. In this work, graphene and BaTiO 3 are used to synergistically facilitate the self‐assembly of the β‐phase that is known to induce the piezoelectric properties of the polyvinylidene fluoride (PVDF). This leads to a PVDF/graphene‐BaTiO 3 nanocomposite with a unique capability of integrating Phra Phrom‐like four functions into one single asymmetric membrane: i) solar evaporation, ii) power generation, iii) piezo‐photodegradation, and iv) self‐cleaning/monitoring for environmental remediation and resources regeneration. The high heat accumulation capability and piezoelectric performance of the membrane enable it to simultaneously achieve a water production rate of 0.99 kgm −2 h −1 , in compliance with WHO standards, and a maximum power output of 5.73 Wm −2 in simulated natural environments. Upon subjecting the membranes to environmental cleaning, they not only show a 93% dye degradation rate due to the synergistic effect of piezoelectricity and photocatalysis but also resolve the membrane fouling issue, exhibiting ≈200% resistance change compared to the static state. The successful integration of these four functions into one membrane shows the great potential of this work toward a more sustainable and viable water and energy production approach.
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