Composite laminar membranes for electricity generation from water evaporation

IF 9 2区 材料科学 Q1 CHEMISTRY, PHYSICAL Nano Research Pub Date : 2023-07-24 DOI:10.1007/s12274-023-5906-5
Xiao Wang, Gang Yuan, Han Zhou, Yu Jiang, Shuo Wang, Jiaojiao Ma, Chongyang Yang, Sheng Hu
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Abstract

Harvesting clean energy from water evaporation has been extensively investigated due to its sustainability. To achieve high efficiency, energy conversion materials should contain multiple features which are difficult to be simultaneously obtained from single-component materials. Here we use composite laminar membranes assembled by nanosheets of graphene oxide and mica, and find a sustained power density induced by water evaporation that is two orders of magnitude larger than that from membranes made by either of the components. The power output is attributed to selective proton transport driven by water evaporation through the interlayer nanochannels in the membranes. This process relies on the synergistic effects from negatively charged and hydrophilic mica surfaces that are important for proton selectivity and water transport, and the tunable electrical conductivity of graphene oxide that provides optimized internal resistance. The demonstrated composite membranes offer a strategy of enhancing power generation by combining the advantages from each of their components.

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用于水蒸发发电的复合层流膜
由于其可持续性,从水蒸发中收集清洁能源已被广泛研究。为了实现高效率,能量转换材料必须包含多种特性,而这些特性是单一组分材料难以同时获得的。在这里,我们使用由氧化石墨烯和云母纳米片组装的复合层流膜,并发现由水蒸发引起的持续功率密度比由任何一种成分制成的膜大两个数量级。输出功率归因于水蒸发通过膜层间纳米通道驱动的选择性质子输运。这一过程依赖于负电荷和亲水云母表面的协同效应,这对质子选择性和水的传输很重要,而氧化石墨烯的可调电导率提供了优化的内阻。所展示的复合膜提供了一种通过结合其每个组件的优势来增强发电的策略。
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来源期刊
Nano Research
Nano Research 化学-材料科学:综合
CiteScore
14.30
自引率
11.10%
发文量
2574
审稿时长
1.7 months
期刊介绍: Nano Research is a peer-reviewed, international and interdisciplinary research journal that focuses on all aspects of nanoscience and nanotechnology. It solicits submissions in various topical areas, from basic aspects of nanoscale materials to practical applications. The journal publishes articles on synthesis, characterization, and manipulation of nanomaterials; nanoscale physics, electrical transport, and quantum physics; scanning probe microscopy and spectroscopy; nanofluidics; nanosensors; nanoelectronics and molecular electronics; nano-optics, nano-optoelectronics, and nano-photonics; nanomagnetics; nanobiotechnology and nanomedicine; and nanoscale modeling and simulations. Nano Research offers readers a combination of authoritative and comprehensive Reviews, original cutting-edge research in Communication and Full Paper formats. The journal also prioritizes rapid review to ensure prompt publication.
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