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3D打印水凝胶中的液态金属太阳能蒸发器:融合光谱调控微纳结构与表面工程用于太阳能海水淡化

3D-Printed Liquid Metal-in-Hydrogel Solar Evaporator: Merging Spectrum-Manipulated Micro-Nano Architecture and Surface Engineering for Solar Desalination.

作者信息

Yang Shengdu, Zhang Hao, Sun Xin, Bai Junwei, Zhang Junhua

机构信息

State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University, Chengdu 610065, China.

Shandong Laboratory of Yantai Advanced Materials and Green Manufacturing, Yantai 264006, China.

出版信息

ACS Nano. 2024 Feb 8. doi: 10.1021/acsnano.3c12574.

Abstract

Solar desalination driven by interfacial heating is considered a promising technique to alleviate the freshwater shortage crisis. However, its further extension and application are confined by factors such as highlighted salt accumulation, inferior energy efficiency, and poor durability. Herein, a microsized eutectic gallium-indium (EGaIn) core-shell nanodroplet (denoted as LMTE) with photo-cross-linking and photothermal traits, stabilized by allyl glycidyl ether (AGE)-grafting tannic acid (TA), is explored as the solar absorber for broadband light absorbing and localized micro-nano heat channeling. The LMTE nanodroplets are formulated directly with highly hydrated polymers and photosensitive species to successfully develop a water-based photothermal ink suitable for digital light processing (DLP) 3D printing. As a demonstration, the LMTE composite hydrogel-forged milli-conical needle arrays with metal-phenolic network (MPN)-engineered wettability and photothermal enhancement can be printed by the digital light processing (DLP) technique and designed rationally via a bottom-up strategy. The 3D-printing hydrogel evaporator is composed of spectrum-tailored EGaIn nanodroplets for efficient photon harvesting and MPN-coated milli-cone arrays for water supplying with micro-nano channeling, which function cooperatively to bestow the 3D solar evaporator with superior solar-powered water evaporation (2.96 kg m h, 96.93% energy efficiency) and excellent solar desalination (salt cycle and site-specific salt crystallization). Furthermore, a robust steam generating/collecting system of the 3D solar evaporator is demonstrated, providing valuable guidance for building a water-energy-agriculture nexus.

摘要

界面加热驱动的太阳能海水淡化被认为是缓解淡水短缺危机的一项很有前景的技术。然而,其进一步的推广和应用受到诸如突出的盐积累、较低的能源效率和较差的耐久性等因素的限制。在此,一种由烯丙基缩水甘油醚(AGE)接枝单宁酸(TA)稳定的具有光交联和光热特性的微米级共晶镓铟(EGaIn)核壳纳米液滴(记为LMTE)被探索用作太阳能吸收剂,用于宽带光吸收和局部微纳热通道。LMTE纳米液滴直接与高度水合的聚合物和光敏物质配制,成功开发出一种适用于数字光处理(DLP)3D打印的水基光热墨水。作为示范,具有金属-酚醛网络(MPN)工程润湿性和光热增强的LMTE复合水凝胶锻造的毫锥形针阵列可以通过数字光处理(DLP)技术打印,并通过自下而上的策略进行合理设计。3D打印水凝胶蒸发器由用于高效光子捕获的光谱定制EGaIn纳米液滴和用于微纳通道供水的MPN涂层毫锥阵列组成,它们协同作用,赋予3D太阳能蒸发器卓越的太阳能驱动水蒸发性能(2.96 kg m h,96.93%的能源效率)和出色的太阳能海水淡化性能(盐循环和特定位置盐结晶)。此外,展示了一种3D太阳能蒸发器的强大蒸汽产生/收集系统,为构建水-能源-农业联系提供了有价值的指导。

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