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用于锂离子电池的物种介导的纳米材料生物合成

Biosynthesis of Nanomaterials by Species for Application in Lithium Ion Batteries.

作者信息

Kim Tae-Yang, Kim Min Gyu, Lee Ji-Hoon, Hur Hor-Gil

机构信息

School of Earth Sciences and Environmental Engineering, Gwangju Institute of Science and Technology, Gwangju, South Korea.

Pohang Accelerator Laboratory, Pohang University of Science and Technology, Pohang, South Korea.

出版信息

Front Microbiol. 2018 Nov 21;9:2817. doi: 10.3389/fmicb.2018.02817. eCollection 2018.

Abstract

Nanomaterials exhibit extraordinary properties based on their size, shape, chemical composition, and crystal structure. Owing to their unique properties nanomaterials are preferred over their bulk counterparts for a number of applications. Although conventional physical and chemical routes were established for the massive production of nanomaterials, there are some drawbacks such as environmental burden and high cost that cannot be disregarded. Recently, there has been great interest toward the green synthesis of inorganic nanomaterials. It has been reported that dissimilatory metal reduction by microorganisms is a cost-effective process to remediate toxic organic and inorganic compounds under anaerobic conditions. Particularly, members of the genus have been utilized to produce various biogenic nanomaterials with unique micro/nanostructured morphologies through redox transformations as well as to remove harmful metals and metalloids in eco-efficient and environment-friendly methods under ambient conditions. In the present mini-review, we specifically address the active utilization of microbial respiration processes for the synthesis of novel functional biogenic nanomaterials by the members of the genus. This biosynthetic method may provide alternative approaches to produce electrode materials for sustainable energy storage applications.

摘要

纳米材料基于其尺寸、形状、化学成分和晶体结构展现出非凡的性能。由于其独特的性质,在许多应用中,纳米材料比其块状对应物更受青睐。尽管已经建立了用于大规模生产纳米材料的传统物理和化学方法,但仍存在一些缺点,如环境负担和高成本,这些是不容忽视的。最近,人们对无机纳米材料的绿色合成产生了浓厚兴趣。据报道,微生物异化金属还原是在厌氧条件下修复有毒有机和无机化合物的一种经济有效的过程。特别是,该属的成员已被用于通过氧化还原转化产生具有独特微/纳米结构形态的各种生物源纳米材料,并在环境条件下以生态高效和环境友好的方法去除有害金属和类金属。在本微型综述中,我们特别探讨了该属成员如何积极利用微生物呼吸过程来合成新型功能性生物源纳米材料。这种生物合成方法可能为生产用于可持续储能应用的电极材料提供替代方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b7e/6258770/73aacbecada1/fmicb-09-02817-g001.jpg

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