Homaeigohar Shahin
Nanochemistry and Nanoengineering, Department of Chemistry and Materials Science, School of Chemical Engineering, Aalto University, Kemistintie 1, 00076 Aalto, Finland.
Nanomaterials (Basel). 2020 Feb 10;10(2):295. doi: 10.3390/nano10020295.
Clean water is a vital element for survival of any living creature and, thus, crucially important to achieve largely and economically for any nation worldwide. However, the astonishingly fast trend of industrialization and population growth and the arisen extensive water pollutions have challenged access to clean water across the world. In this regard, 1.6 million tons of dyes are annually consumed. Thereof, 10%-15% are wasted during use. To decolorize water streams, there is an urgent need for the advanced remediation approaches involving utilization of novel materials and technologies, which are cost and energy efficient. Nanomaterials, with their outstanding physicochemical properties, can potentially resolve the challenge of need to water treatment in a less energy demanding manner. In this review, a variety of the most recent (from 2015 onwards) opportunities arisen from nanomaterials in different dimensionalities, performances, and compositions for water decolorization is introduced and discussed. The state-of-the-art research studies are presented in a classified manner, particularly based on structural dimensionality, to better illustrate the current status of adsorption-based water decolorization using nanomaterials. Considering the introduction of many newly developed nano-adsorbents and their classification based on the dimensionality factor, which has never been employed for this sake in the related literature, a comprehensive review will be presented.
清洁水是任何生物生存的关键要素,因此,对于世界上任何一个国家来说,在大规模且经济高效地获取清洁水方面都至关重要。然而,工业化和人口增长惊人的快速趋势以及由此产生的广泛水污染,对全球获取清洁水构成了挑战。在这方面,每年消耗160万吨染料。其中,10% - 15%在使用过程中被浪费。为了使水流脱色,迫切需要采用涉及利用新型材料和技术的先进修复方法,这些方法要具有成本效益和能源效率。纳米材料凭借其出色的物理化学性质,有可能以较低的能源需求方式解决水处理需求的挑战。在本综述中,介绍并讨论了自2015年起纳米材料在不同维度、性能和组成方面为水脱色带来的各种最新机遇。以分类的方式呈现了最前沿的研究,特别是基于结构维度,以便更好地说明使用纳米材料进行基于吸附的水脱色的现状。考虑到引入了许多新开发的纳米吸附剂,并基于维度因素对其进行分类,而相关文献中从未为此进行过这样的分类,将给出一篇全面的综述。