Ning An, Mengyu Ma, Yi Chen, Zhining Wang and Qian Li*,
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引用次数: 0
摘要
太阳能驱动的光热界面蒸发技术目前被认为是最绿色、最有效的淡水生产策略之一。然而,在处理实际复杂水体时,如何将蒸汽产生与去除挥发性有机物(VOCs)和灭活细菌同时结合起来,实现多重净水效果仍然是一个挑战。本文以Cu2+交联生物质海藻酸钠(SA)水凝胶为基本骨架,内嵌碳化羧甲基壳聚糖(CCC)为光热材料,成功构建了集光热与光催化效应于一体的太阳能蒸发器(SA/CCC/Cu2+)。在太阳能蒸发过程中,SA/CCC/Cu2+蒸发器成功实现了蒸馏水与含VOCs的散装水的分离,在保持蒸发速率2.54 kg m-2 h-1的情况下,VOC去除率达到96.77%。此外,它还具有灭活大肠杆菌(E. coli)的能力,可在40分钟内杀灭100%的细菌。该设计具有快速的蒸发速度和令人印象深刻的净水效果,有望成为太阳能驱动界面蒸发淡水生产的新途径。
Biomass Hydrogel Solar-Driven Multifunctional Evaporator for Desalination, VOC Removal, and Sterilization
Solar-driven photothermal interfacial evaporation technology is currently perceived as one of the most green and effective freshwater production strategies available. However, when dealing with actual complex water bodies, it remains a challenge to combine steam generation with removing volatile organic compounds (VOCs) and inactivating bacteria at the same time to achieve multiple water purification effects. In this paper, a solar evaporator (SA/CCC/Cu2+) integrating photothermal and photocatalytic effects was successfully constructed by using a Cu2+ cross-linked biomass sodium alginate (SA) hydrogel as the basic skeleton and carbonized carboxymethyl chitosan (CCC) embedded internally as the photothermal material. During the solar evaporation process, the SA/CCC/Cu2+ evaporator successfully realized the separation of distilled water from bulk water containing VOCs, achieving the VOC removal efficiency of 96.77% while maintaining an evaporation rate of 2.54 kg m–2 h–1. In addition, it demonstrated remarkable capacity in inactivating Escherichia coli (E. coli), eliminating 100% of the bacteria within 40 min. With the rapid evaporation rate and impressive water purification effect, this design is anticipated to be a new path for solar-driven interfacial evaporative freshwater production.
期刊介绍:
ACS ES&T Engineering publishes impactful research and review articles across all realms of environmental technology and engineering, employing a rigorous peer-review process. As a specialized journal, it aims to provide an international platform for research and innovation, inviting contributions on materials technologies, processes, data analytics, and engineering systems that can effectively manage, protect, and remediate air, water, and soil quality, as well as treat wastes and recover resources.
The journal encourages research that supports informed decision-making within complex engineered systems and is grounded in mechanistic science and analytics, describing intricate environmental engineering systems. It considers papers presenting novel advancements, spanning from laboratory discovery to field-based application. However, case or demonstration studies lacking significant scientific advancements and technological innovations are not within its scope.
Contributions containing experimental and/or theoretical methods, rooted in engineering principles and integrated with knowledge from other disciplines, are welcomed.