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利用光子加热器再生的热响应离子液体进行太阳能海水淡化。

Solar Desalination Using Thermally Responsive Ionic Liquids Regenerated with a Photonic Heater.

机构信息

Energy Storage and Distributed Resources Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.

Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.

出版信息

Environ Sci Technol. 2021 Mar 2;55(5):3260-3269. doi: 10.1021/acs.est.0c06232. Epub 2021 Feb 17.

Abstract

Growing global water demand has brought desalination technologies to the forefront for freshwater production from nontraditional water sources. Among these, forward osmosis (FO) is a promising two-step desalination process (draw dilution and regeneration), but it is often overlooked due to the energy requirements associated with draw regeneration. To address this limiting factor, we demonstrate FO desalination using thermally responsive ionic liquids (ILs) that are regenerated using a renewable energy input, that is, solar heat. To efficiently harness sunlight, a simple photonic heater converts incoming irradiation into infrared wavelengths that are directly absorbed by IL-water mixtures, thereby inducing phase separation to yield clean water. This approach is markedly different as it uses radiative heating, a noncontact mode of heat transfer that couples to chemical functional groups within the IL for rapid energy transfer without a heat exchanger or secondary fluid. Overall, a solar-thermal separation efficiency of 50% is achieved under unconcentrated sunlight, which can be increased to 69% with the thermal design. Successful desalination of produced water from oil wells in Southern California highlights the potential of solar-powered IL-FO for energy-efficient and low-cost desalination of complex brines for beneficial water reuse.

摘要

全球不断增长的用水需求使得海水淡化技术成为从非传统水源生产淡水的首选。其中,正向渗透(FO)是一种很有前途的两步法海水淡化工艺(汲取稀释和再生),但由于汲取再生所涉及的能源需求,它往往被忽视。为了解决这个限制因素,我们使用热响应离子液体(IL)进行 FO 海水淡化,该 IL 利用可再生能源输入,即太阳能进行再生。为了有效地利用太阳光,一种简单的光子加热器将入射辐射转换成 IL-水混合物直接吸收的红外波长,从而诱导相分离以产生清洁水。这种方法明显不同,因为它使用辐射加热,这是一种非接触式传热模式,与 IL 中的化学官能团耦合,以实现快速能量传递,而无需热交换器或二次流体。在非浓缩太阳光下,太阳能-热分离效率达到 50%,通过热设计可提高到 69%。成功地对南加州油井采出水进行了海水淡化,这突显了太阳能驱动的 IL-FO 用于能源高效、低成本淡化复杂盐水以实现有益的水再利用的潜力。

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