| Literature DB >> 29206253 |
Yao Zhang1, Dengwu Zhao, Fan Yu, Chao Yang, Jinwei Lou, Yanming Liu, Yingying Chen, Zhongyong Wang, Peng Tao, Wen Shang, Jianbo Wu, Chengyi Song, Tao Deng.
Abstract
This paper presents a new steam sterilization approach that uses a solar-driven evaporation system at the water/air interface. Compared to the conventional solar autoclave, this new steam sterilization approach via interfacial evaporation requires no complex system design to bear high steam pressure. In such a system, a reduced graphene oxide/polytetrafluoroethylene composite membrane floating at the water/air interface serves as a light-to-heat conversion medium to harvest and convert incident solar light into localized heat. Such localized heat raises the temperature of the membrane substantially and helps generate steam with a temperature higher than 120 °C. A sterilization device that takes advantage of the interfacial solar-driven evaporation system was built and its successful sterilization capability was demonstrated through both chemical and biological sterilization tests. The interfacial evaporation-based solar driven sterilization approach offers a potential low cost solution to meet the need for sterilization in undeveloped areas that lack electrical power but have ample solar radiation.Entities:
Year: 2017 PMID: 29206253 DOI: 10.1039/c7nr06861a
Source DB: PubMed Journal: Nanoscale ISSN: 2040-3364 Impact factor: 7.790