Fei Li
(, ), Jiongpeng Huang
(, ), Dingxin Xu
(, ), Chengjin Wang
(, ), Liang Zhao
(, ), Xinyu Gong
(, ), Hang Li
(, ), Can Yang Zhang
(, ), Qinghua Song
(, ), Yang Su
(, ), Hui-Ming Cheng
(, )
{"title":"基于石墨烯和回收金的便携式可清洗太阳能蒸汽蒸发器,用于高效的使用点水净化","authors":"Fei Li \n (, ), Jiongpeng Huang \n (, ), Dingxin Xu \n (, ), Chengjin Wang \n (, ), Liang Zhao \n (, ), Xinyu Gong \n (, ), Hang Li \n (, ), Can Yang Zhang \n (, ), Qinghua Song \n (, ), Yang Su \n (, ), Hui-Ming Cheng \n (, )","doi":"10.1007/s40843-024-3089-2","DOIUrl":null,"url":null,"abstract":"<div><p>A solar steam evaporator provides a sustainable and efficient alternative water purification solution to address the global freshwater shortage. Previous efforts have made significant advances in maximizing its water evaporation rate, but no single evaporator has all the properties necessary for practical point-of-use application, including a high efficiency for generation of drinkable water, an excellent portability critical for on-site water purification, good washability for mitigating evaporator fouling, and good reusability. We report a strategy to produce a high-performance photothermal material for point-of-use water purification. By simultaneously incorporating graphene and gold particles grown from recycled electronic waste in a mechanically strong sponge, we achieved highly efficient water purification under realistic conditions. In addition to a high evaporation rate (3.55 kg/m<sup>2</sup>/h under one-sun irradiation) attributed to a control of atomic structure of graphene and the size-dependent surface plasmon resonance of gold nanoparticles, it is portable which can be folded, vacuum compacted, dried and rehydrated without compromising performance. It also allows repeated washing to remove contaminant fouling so that it can be reused. The evaporator transforms various types of contaminated water into drinkable clean water, and can be mounted at any angle to optimize the incident solar irradiation. Furthermore, the assembled steam evaporator device could gain purified water meeting the World Health Organization drinking water standards with a high evaporation rate of 9.36 kg/m<sup>2</sup>/h under outdoor sunlight.</p></div>","PeriodicalId":773,"journal":{"name":"Science China Materials","volume":"67 11","pages":"3700 - 3709"},"PeriodicalIF":6.8000,"publicationDate":"2024-09-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"A portable and washable solar steam evaporator based on graphene and recycled gold for efficient point-of-use water purification\",\"authors\":\"Fei Li \\n (, ), Jiongpeng Huang \\n (, ), Dingxin Xu \\n (, ), Chengjin Wang \\n (, ), Liang Zhao \\n (, ), Xinyu Gong \\n (, ), Hang Li \\n (, ), Can Yang Zhang \\n (, ), Qinghua Song \\n (, ), Yang Su \\n (, ), Hui-Ming Cheng \\n (, )\",\"doi\":\"10.1007/s40843-024-3089-2\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>A solar steam evaporator provides a sustainable and efficient alternative water purification solution to address the global freshwater shortage. Previous efforts have made significant advances in maximizing its water evaporation rate, but no single evaporator has all the properties necessary for practical point-of-use application, including a high efficiency for generation of drinkable water, an excellent portability critical for on-site water purification, good washability for mitigating evaporator fouling, and good reusability. We report a strategy to produce a high-performance photothermal material for point-of-use water purification. By simultaneously incorporating graphene and gold particles grown from recycled electronic waste in a mechanically strong sponge, we achieved highly efficient water purification under realistic conditions. In addition to a high evaporation rate (3.55 kg/m<sup>2</sup>/h under one-sun irradiation) attributed to a control of atomic structure of graphene and the size-dependent surface plasmon resonance of gold nanoparticles, it is portable which can be folded, vacuum compacted, dried and rehydrated without compromising performance. It also allows repeated washing to remove contaminant fouling so that it can be reused. The evaporator transforms various types of contaminated water into drinkable clean water, and can be mounted at any angle to optimize the incident solar irradiation. 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A portable and washable solar steam evaporator based on graphene and recycled gold for efficient point-of-use water purification
A solar steam evaporator provides a sustainable and efficient alternative water purification solution to address the global freshwater shortage. Previous efforts have made significant advances in maximizing its water evaporation rate, but no single evaporator has all the properties necessary for practical point-of-use application, including a high efficiency for generation of drinkable water, an excellent portability critical for on-site water purification, good washability for mitigating evaporator fouling, and good reusability. We report a strategy to produce a high-performance photothermal material for point-of-use water purification. By simultaneously incorporating graphene and gold particles grown from recycled electronic waste in a mechanically strong sponge, we achieved highly efficient water purification under realistic conditions. In addition to a high evaporation rate (3.55 kg/m2/h under one-sun irradiation) attributed to a control of atomic structure of graphene and the size-dependent surface plasmon resonance of gold nanoparticles, it is portable which can be folded, vacuum compacted, dried and rehydrated without compromising performance. It also allows repeated washing to remove contaminant fouling so that it can be reused. The evaporator transforms various types of contaminated water into drinkable clean water, and can be mounted at any angle to optimize the incident solar irradiation. Furthermore, the assembled steam evaporator device could gain purified water meeting the World Health Organization drinking water standards with a high evaporation rate of 9.36 kg/m2/h under outdoor sunlight.
期刊介绍:
Science China Materials (SCM) is a globally peer-reviewed journal that covers all facets of materials science. It is supervised by the Chinese Academy of Sciences and co-sponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China. The journal is jointly published monthly in both printed and electronic forms by Science China Press and Springer. The aim of SCM is to encourage communication of high-quality, innovative research results at the cutting-edge interface of materials science with chemistry, physics, biology, and engineering. It focuses on breakthroughs from around the world and aims to become a world-leading academic journal for materials science.