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Super Hydrophilic Activated Carbon Decorated Nanopolymer Foam for Scalable, Energy Efficient Photothermal Steam Generation, as an Effective Desalination System

Clean water scarcity is still an intense, prolonged global issue that needs to be resolved urgently. The solar steam generation has shown great potential with a high energy conversion efficiency for clean water production from seawater and wastewater. However, the high evaporation rate of water cann...

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Autores principales: Arshad, Naila, Ahmed, Iftikhar, Irshad, Muhammad Sultan, Li, Hong Rong, Wang, Xianbao, Ahmad, Shafiq, Sharaf, Mohamed, Firdausi, Muhammad, Zaindin, Mazen, Atif, Muhammad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7765040/
https://www.ncbi.nlm.nih.gov/pubmed/33327535
http://dx.doi.org/10.3390/nano10122510
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author Arshad, Naila
Ahmed, Iftikhar
Irshad, Muhammad Sultan
Li, Hong Rong
Wang, Xianbao
Ahmad, Shafiq
Sharaf, Mohamed
Firdausi, Muhammad
Zaindin, Mazen
Atif, Muhammad
author_facet Arshad, Naila
Ahmed, Iftikhar
Irshad, Muhammad Sultan
Li, Hong Rong
Wang, Xianbao
Ahmad, Shafiq
Sharaf, Mohamed
Firdausi, Muhammad
Zaindin, Mazen
Atif, Muhammad
author_sort Arshad, Naila
collection PubMed
description Clean water scarcity is still an intense, prolonged global issue that needs to be resolved urgently. The solar steam generation has shown great potential with a high energy conversion efficiency for clean water production from seawater and wastewater. However, the high evaporation rate of water cannot be preserved due to the inevitable fouling of solar absorbers. Herein, a self-floatable and super hydrophilic solar-driven steam generator composed of activated carbon coated melamine foam (ACM). The deposited ACM photothermal layer exhibits outstanding solar absorption (92%) and an efficient evaporation rate of 1.27 kg m(−2) h(−1), along with excellent photothermal conversion efficiency (80%) as compared to commercially available primitive solar stills. The open porous assembly of melamine foam equipped with 80% flexibility (0.8 MPa) enabled smooth water transport and sustain heat accumulation within the matrix. The thermal insulation of ACM is 10 times greater than pure water. Moreover, open porous assembly of designed solar-powered steam generator rejects salt ions as well as volatile organic compounds efficiently. The low-cost and facile fabrication of photothermal based water production presents a potential solution to single step drinking water supply from various resources of the sea, the lakes and mixtures of emulsified oil and industrial wastewater.
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spelling pubmed-77650402020-12-27 Super Hydrophilic Activated Carbon Decorated Nanopolymer Foam for Scalable, Energy Efficient Photothermal Steam Generation, as an Effective Desalination System Arshad, Naila Ahmed, Iftikhar Irshad, Muhammad Sultan Li, Hong Rong Wang, Xianbao Ahmad, Shafiq Sharaf, Mohamed Firdausi, Muhammad Zaindin, Mazen Atif, Muhammad Nanomaterials (Basel) Article Clean water scarcity is still an intense, prolonged global issue that needs to be resolved urgently. The solar steam generation has shown great potential with a high energy conversion efficiency for clean water production from seawater and wastewater. However, the high evaporation rate of water cannot be preserved due to the inevitable fouling of solar absorbers. Herein, a self-floatable and super hydrophilic solar-driven steam generator composed of activated carbon coated melamine foam (ACM). The deposited ACM photothermal layer exhibits outstanding solar absorption (92%) and an efficient evaporation rate of 1.27 kg m(−2) h(−1), along with excellent photothermal conversion efficiency (80%) as compared to commercially available primitive solar stills. The open porous assembly of melamine foam equipped with 80% flexibility (0.8 MPa) enabled smooth water transport and sustain heat accumulation within the matrix. The thermal insulation of ACM is 10 times greater than pure water. Moreover, open porous assembly of designed solar-powered steam generator rejects salt ions as well as volatile organic compounds efficiently. The low-cost and facile fabrication of photothermal based water production presents a potential solution to single step drinking water supply from various resources of the sea, the lakes and mixtures of emulsified oil and industrial wastewater. MDPI 2020-12-14 /pmc/articles/PMC7765040/ /pubmed/33327535 http://dx.doi.org/10.3390/nano10122510 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Arshad, Naila
Ahmed, Iftikhar
Irshad, Muhammad Sultan
Li, Hong Rong
Wang, Xianbao
Ahmad, Shafiq
Sharaf, Mohamed
Firdausi, Muhammad
Zaindin, Mazen
Atif, Muhammad
Super Hydrophilic Activated Carbon Decorated Nanopolymer Foam for Scalable, Energy Efficient Photothermal Steam Generation, as an Effective Desalination System
title Super Hydrophilic Activated Carbon Decorated Nanopolymer Foam for Scalable, Energy Efficient Photothermal Steam Generation, as an Effective Desalination System
title_full Super Hydrophilic Activated Carbon Decorated Nanopolymer Foam for Scalable, Energy Efficient Photothermal Steam Generation, as an Effective Desalination System
title_fullStr Super Hydrophilic Activated Carbon Decorated Nanopolymer Foam for Scalable, Energy Efficient Photothermal Steam Generation, as an Effective Desalination System
title_full_unstemmed Super Hydrophilic Activated Carbon Decorated Nanopolymer Foam for Scalable, Energy Efficient Photothermal Steam Generation, as an Effective Desalination System
title_short Super Hydrophilic Activated Carbon Decorated Nanopolymer Foam for Scalable, Energy Efficient Photothermal Steam Generation, as an Effective Desalination System
title_sort super hydrophilic activated carbon decorated nanopolymer foam for scalable, energy efficient photothermal steam generation, as an effective desalination system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7765040/
https://www.ncbi.nlm.nih.gov/pubmed/33327535
http://dx.doi.org/10.3390/nano10122510
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