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当配位聚合物遇上木材:从分子设计到可持续太阳能海水淡化

When Coordination Polymers Meet Wood: From Molecular Design toward Sustainable Solar Desalination.

作者信息

Sheng Kai, Tian Miaomiao, Zhu Junyong, Zhang Yatao, Van der Bruggen Bart

机构信息

School of Chemical Engineering, Zhengzhou University, Zhengzhou 450001, People's Republic of China.

School of Ecology and Environment, Zhengzhou University, Zhengzhou 450001, People's Republic of China.

出版信息

ACS Nano. 2023 Aug 22;17(16):15482-15491. doi: 10.1021/acsnano.3c01421. Epub 2023 Aug 3.

DOI:10.1021/acsnano.3c01421
PMID:37535405
Abstract

Solar-driven interfacial evaporation harnessing solar energy on a water surface provides a sustainable and economic means to efficiently capture freshwater from nontraditional water sources. Endowed with a hierarchical porous structure and mechanical stability, wood-based evaporators represent a renewable alternative to petroleum-based materials. Nonetheless, incidental inferiorities of a low evaporation rate and weak interfacial strength are challenging to overcome. Herein, we propose the usage of chemically stable coordination polymers (Ni-dithiooxamidato, Ni-DTA) as hydrophilic photothermal nanomaterials for the molecular design of robust wood-based evaporators with improved performance. synthesis of Ni-DTA onto the channel wall of balsawood provides sufficient photothermal domains that localize the converted energy for facilitated interfacial evaporation. A rational control of methanol/dimethylformamide ratios enables the coexistence of 1D-nanofibers and 0D-nanoparticles, endowing Balsa-NiDTA with a high evaporation rate of 2.75 kg m h and an energy efficiency of 82% under one-sun illumination. Experimental and simulation results reveal that Ni-DTA polymers with strong hydration ability decrease the equivalent evaporation enthalpy induced by decreased H-bonding density of water molecules near the evaporation interface. The Balsa-NiDTA evaporator showed a high chemical stability, mainly due to the robust Ni-S/Ni-N bonds and the superior cellulose affinity of Ni-DTA. Furthermore, the Balsa-NiDTA evaporator shows an excellent antibacterial activity and low oil-fouling propensity. This work presents a facile and mild strategy to design chemically stable wood-based evaporators, contributing to highly efficient and sustainable solar desalination under harsh conditions.

摘要

太阳能驱动的界面蒸发利用水表面的太阳能,为从非传统水源高效获取淡水提供了一种可持续且经济的手段。具有分级多孔结构和机械稳定性的木质蒸发器是石油基材料的可再生替代品。然而,低蒸发速率和弱界面强度等附带的劣势难以克服。在此,我们提出使用化学稳定的配位聚合物(二硫代草酰胺镍,Ni-DTA)作为亲水性光热纳米材料,用于分子设计性能更优的坚固木质蒸发器。在轻木的通道壁上合成Ni-DTA可提供足够的光热区域,将转化的能量定位以促进界面蒸发。对甲醇/二甲基甲酰胺比例的合理控制可使一维纳米纤维和零维纳米颗粒共存,使轻木-NiDTA在一个太阳光照下具有2.75 kg m² h⁻¹的高蒸发速率和82%的能量效率。实验和模拟结果表明,具有强水合能力的Ni-DTA聚合物降低了蒸发界面附近水分子氢键密度降低所诱导的等效蒸发焓。轻木-NiDTA蒸发器表现出高化学稳定性,这主要归因于坚固的Ni-S/Ni-N键以及Ni-DTA对纤维素的优异亲和力。此外,轻木-NiDTA蒸发器具有出色的抗菌活性和低油污倾向。这项工作提出了一种简便温和的策略来设计化学稳定的木质蒸发器,有助于在恶劣条件下实现高效且可持续的太阳能海水淡化。

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