Biomass-Based Antibacterial Hybrid Engineering Hydrogel for Efficient Solar Steam Generation

Ping Wang, Xianjiao Wang, Xiaofei Wang, Xuliang Lin* and Xueqing Qiu*, 
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Abstract

Interfacial solar steam generation is recognized as a promising solution to alleviate the scarcity of freshwater resources owing to its utilization of clean solar energy alongside its high efficiency and minimal heat loss. Nonetheless, the utilization of solar energy for water evaporation encounters challenges, primarily manifested in low evaporation rates and efficiency. Herein, we introduced an approach involving the development of a biomass-based hybrid engineering hydrogel evaporator, denoted as CLC (chitosan and lignosulfonate sodium hybrid hydrogel with a carbon nanotube). The construction of this evaporator involves the straightforward blending of lignosulfonate sodium (LS) and marine polysaccharide biomass chitosan (CS) with carbon nanotubes (CNT) serving as the photothermal materials. The interaction between the sulfonic group of LS and the amino group of CS with water molecules, facilitated by hydrogen bonding and electrostatic interactions, reduces the evaporation enthalpy of water, thereby lowering the energy demand for evaporation. Furthermore, the incorporation of LS reduces the thermal conductivity of the as-prepared hydrogel and promotes photothermal management to mitigate heat loss. The CLC hydrogel demonstrates an evaporation rate of 2.48 kg m–2 h–1 and energy efficiency of 90% under one sun illumination. Moreover, the CLC hydrogel exhibits excellent antibacterial properties (98.4%), ensuring that desalinated water meets drinking standards. This high efficiency and eco-friendly biomass hydrogel with antibiological pollution characteristics and purification abilities holds great potential for widespread application of long-term seawater desalination.

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用于高效太阳能蒸汽发电的生物质抗菌混合工程水凝胶
界面太阳能蒸汽发电被认为是缓解淡水资源匮乏的一种有前途的解决方案,因为它不仅能利用清洁的太阳能,而且效率高、热损耗小。然而,利用太阳能蒸发水却面临着挑战,主要表现为蒸发率和效率较低。在此,我们介绍了一种方法,涉及开发一种基于生物质的混合工程水凝胶蒸发器,称为 CLC(壳聚糖和木质素磺酸钠与碳纳米管混合水凝胶)。这种蒸发器的构造涉及木质素磺酸钠(LS)和海洋多糖生物质壳聚糖(CS)与作为光热材料的碳纳米管(CNT)的直接混合。LS 的磺酸基和 CS 的氨基通过氢键和静电作用与水分子相互作用,降低了水的蒸发焓,从而降低了蒸发的能量需求。此外,LS 的加入还降低了制备的水凝胶的热传导率,促进了光热管理以减少热量损失。在太阳光照射下,CLC 水凝胶的蒸发率为 2.48 kg m-2 h-1,能效为 90%。此外,CLC 水凝胶还具有出色的抗菌性能(98.4%),可确保淡化水符合饮用水标准。这种高效、环保的生物质水凝胶具有抗菌污染特性和净化能力,为长期海水淡化的广泛应用提供了巨大潜力。
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