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DNA 金属化策略在水分解电催化中的发展:综述。

Developments in DNA metallization strategies for water splitting electrocatalysis: A review.

机构信息

Materials Electrochemistry Division (MED), CSIR-Central Electrochemical Research Institute (CECRI), Karaikudi 630003, Tamil Nadu, India; Academy of Scientific and Innovative Research (AcSIR), Ghaziabad 201002, India.

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad 201002, India; Department of Applied Chemistry, School of Advanced Science and Engineering, Waseda University, Nishiwaseda Campus, Shinjuku-ku, Tokyo 169-8555, Japan.

出版信息

Adv Colloid Interface Sci. 2020 Aug;282:102205. doi: 10.1016/j.cis.2020.102205. Epub 2020 Jul 9.

Abstract

The biomolecule DNA with the presence of different functionalities found to interact with different kinds of metal ions and show relatively higher stability over a long period of time when optimized appropriately. With the presence of A-T and G-C pairs, sugar moieties, phosphate functional groups and the double-helical structure, it can assemble both cationic and anionic species and forms a perfect metal-DNA self-assembly. Depending upon the aspect ratio of metal-DNA self-assemblies, metal content and their morphological outcomes, they could deliver variance in the catalytic activities. Such differences can be brought out by varying the synthesis reaction parameters focusing on a specific electrocatalytic application. In this review, recent developments in DNA metallization is elaborated first highlighting the underlying interactions between DNA and cationic/anionic species of various metals following which application of metal-DNA assemblies in electrocatalytic water oxidation and reduction are discussed critically. Knowledge provided in this review thus acts as the guide to various DNA metallization strategies and their subsequent application to water electrolysis for hydrogen generation.

摘要

具有不同功能的生物分子 DNA 被发现可以与不同种类的金属离子相互作用,并在适当优化后长时间保持相对较高的稳定性。由于存在 A-T 和 G-C 对、糖基、磷酸官能团和双螺旋结构,它可以组装阳离子和阴离子物种,并形成完美的金属-DNA 自组装。根据金属-DNA 自组装的纵横比、金属含量和形态结果,它们可以在催化活性方面带来差异。通过改变聚焦于特定电催化应用的合成反应参数,可以产生这些差异。在这篇综述中,首先详细阐述了 DNA 金属化的最新进展,重点强调了 DNA 与各种金属的阳离子/阴离子物种之间的基础相互作用,然后批判性地讨论了金属-DNA 组装在电催化水氧化和还原中的应用。因此,本综述中提供的知识可作为各种 DNA 金属化策略及其随后在水电解制氢中的应用的指南。

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