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      Bifunctional in situ polymerized nanocomposites for convective solar desalination and enhanced photo-thermoelectric power generation

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          Abstract

          One deed for two needs-inspired bifunctional MnO 2@PPy nanocomposites for solar-driven water evaporation at the rate of 12.31 kg m −2 per day and enhanced photo-thermoelectric power generation with an output power density ( P out ∼ 12.3 W m −2).

          Abstract

          The inadequate supply of water and energy in remote areas poses a risk to human life, which can be overcome via the use of portable solar-driven evaporation setups. However, they involve energy-intensive techniques and salt-accumulation is still a significant barrier for large-scale solar steam generation applications. Herein, we report the preparation of bifunctional in situ-polymerized MnO 2@PPy nanocomposites (NCs) for nano-enabled solar evaporation followed by chemical convection and enhanced generation of photo-thermoelectricity. The novel evaporation structure design is composed of super hydrophilic MnO 2@PPy NC/two-phase crafted polyurethane wicks for the convective transport of water and polyethylene terephthalate (PET) foam for excellent thermal management. This work presents, for the first time, real-time experimental and simulated proof of a salinity gradient through convective flow, which is a promising solution for synchronous salt-rejection and intensified interfacial heat accumulation (42.8 °C) to generate vapor under 1 kW m −2 at a rate of 1.69 kg m −2 h −1 and actually yield freshwater at a rate of 12.31 kg m −2 per day. The state-of-art photo-thermoelectric performances revealed an enhanced output power density ( P out ∼ 12.3 W m −2) and open circuit current ( I out ∼ 61.3 mA) under 1 kW m −2 solar irradiation, which are higher than that of other nanogenerators. More importantly, for the first time, numerical heat transfer and computational fluid dynamics (CFDs) simulations were successfully performed to study the salt-resistant mechanisms by computing the hot brine mass flux via chemical convection. Our work will further accelerate the distillate rate or zero liquid discharge phenomenon for the practical implementation of solar-driven seawater desalination and a clean source of energy generation.

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          Most cited references45

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          Solar-driven interfacial evaporation

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            Steam generation under one sun enabled by a floating structure with thermal concentration

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              Flexible and Salt Resistant Janus Absorbers by Electrospinning for Stable and Efficient Solar Desalination

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                Author and article information

                Contributors
                Journal
                ESNNA4
                Environmental Science: Nano
                Environ. Sci.: Nano
                Royal Society of Chemistry (RSC)
                2051-8153
                2051-8161
                May 19 2022
                2022
                : 9
                : 5
                : 1685-1698
                Affiliations
                [1 ]Ministry of Education Key Laboratory for the Green Preparation and, Application of Functional Materials, Collaborative Innovation Center for Advanced Organic Chemical Materials Co-constructed by the Province and Ministry, Hubei Key Laboratory of Polymer Materials (Hubei University), School of Materials Science and Engineering, Hubei University, Wuhan 430062, P.R. China
                [2 ]Institute of Quantum Optics and Quantum Information, School of Science, Xi'an Jiaotong University (XJTU), Xi'an 710049, China
                [3 ]Food and Biotechnology Research Center (FBRC), Pakistan Council of Scientific and Industrial Research, Lahore, 54000, Pakistan
                [4 ]Department of Mechanical Engineering, Northern Illinois University, 590 Garden Road, DeKalb, Illinois 60115, USA
                Article
                10.1039/D1EN01018B
                d9b576ea-620e-4953-a852-ed03d54c0c29
                © 2022

                http://rsc.li/journals-terms-of-use

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