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Polyphenolic compounds as electron shuttles for sustainable energy utilization

机译:多酚化合物作为电子穿梭机,可持续利用能源

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Abstract For renewable and sustainable bioenergy utilization with cost-effectiveness, electron-shuttles (ESs) (or redox mediators (RMs)) act as electrochemical “catalysts” to enhance rates of redox reactions, catalytically accelerating electron transport efficiency for abiotic and biotic electrochemical reactions. ESs are popularly used in cellular respiratory systems, metabolisms in organisms, and widely applied to support global lives. Apparently, they are applicable to increase power-generating capabilities for energy utilization and/or fuel storage (i.e., dye-sensitized solar cell, batteries, and microbial fuel cells (MFCs)). This first-attempt review specifically deciphers the chemical structure association with characteristics of ESs, and discloses redox-mediating potentials of polyphenolics-abundant ESs via MFC modules. Moreover, to effectively convert electron-shuttling capabilities from non-sustainable antioxidant activities, environmental conditions to induce electrochemical mediation apparently play critical roles of great significance for bioenergy stimulation. For example, pH levels would significantly affect electrochemical potentials to be exhibited (e.g., alkaline pHs are electrochemically favorable for expression of such electron-shuttling characteristics). Regarding chemical structure effect, chemicals with ortho - and para -dihydroxyl substituents-bearing aromatics own convertible characteristics of non-renewable antioxidants and electrochemically catalytic ESs; however, ES capabilities of meta -dihydroxyl substituents can be evidently repressed due to lack of resonance effect in the structure for intermediate radical(s) during redox reaction. Moreover, this review provides conclusive remarks to elucidate the promising feasibility to identify whether such characteristics are non-renewable antioxidants or reversible ESs from natural polyphenols via cyclic voltammetry and MFC evaluation. Evidently, considering sustainable development, such electrochemically convertible polyphenolic species in plant extracts can be reversibly expressed for bioenergy-stimulating capabilities in MFCs under electrochemically favorable conditions.
机译:摘要对于具有成本效益的可再生和可持续生物能源利用,电子穿梭梭(ESs)(或氧化还原介体(RMs))充当电化学“催化剂”,以提高氧化还原反应的速率,催化加速非生物和生物电化学反应的电子传输效率。 。 ES广泛用于细胞呼吸系统,生物体内的新陈代谢,并广泛用于支持全球生命。显然,它们适用于增加用于能量利用和/或燃料存储的发电能力(即,染料敏化太阳能电池,电池和微生物燃料电池(MFC))。这项首次尝试的综述特别解释了ES结构与化学结构的关系,并通过MFC模块公开了多酚含量丰富的ES的氧化还原介导潜力。而且,为了有效地将电子束缚能力从不可持续的抗氧化活性转变成能诱导电化学介导的环境条件,显然对生物能源刺激具有重要意义。例如,pH水平将显着影响要显示的电化学电势(例如,碱性pH在电化学上有利于表达这种电子穿梭特性)。关于化学结构效应,带有邻-和对-二羟基取代基的芳族化合物具有不可再生的抗氧化剂和电化学催化ES的可转换特性。然而,由于在氧化还原反应过程中,一个或多个中间基团的结构缺乏共振效应,因此可以明显抑制间-二羟基取代基的ES功能。此外,该综述提供了结论性意见,以阐明通过循环伏安法和MFC评估从天然多酚中确定此类特征是不可再生的抗氧化剂还是可逆ES的有希望的可行性。显然,考虑到可持续发展,在电化学有利条件下,植物提取物中的此类可电化学转化的多酚类物质可逆表达为MFC中的生物能刺激能力。

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