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用于能源应用的多糖基材料的最新进展:综述

Recent Progress in Polysaccharide-Based Materials for Energy Applications: A Review.

作者信息

Torres Fernando G, Troncoso Omar P, Urtecho Adrián, Soto Percy, Pachas Bruce

机构信息

Department of Mechanical Engineering, Pontificia Universidad Católica del Perú, Avenida Universitaria 1801, 15088 Lima, Peru.

出版信息

ACS Appl Mater Interfaces. 2025 Mar 5;17(9):13179-13196. doi: 10.1021/acsami.4c03802. Epub 2024 Jun 12.

Abstract

In recent years, polysaccharides have emerged as a promising alternative for the development of environmentally friendly materials. Polysaccharide-based materials have been mainly studied for applications in the food, packaging, and biomedical industries. However, many investigations report processing routes and treatments that enable the modification of the inherent properties of polysaccharides, making them useful as materials for energy applications. The control of the ionic and electronic conductivities of polysaccharide-based materials allows for the development of solid electrolytes and electrodes. The incorporation of conductive and semiconductive phases can modify the permittivities of polysaccharides, increasing their capacity for charge storage, making them useful as active surfaces of energy harvesting devices such as triboelectric nanogenerators. Polysaccharides are inexpensive and abundant and could be considered as a suitable option for the development and improvement of energy devices. This review provides an overview of the main research work related to the use of both common commercially available polysaccharides and local native polysaccharides, including starch, chitosan, carrageenan, ulvan, agar, and bacterial cellulose. Solid and gel electrolytes derived from polysaccharides show a wide range of ionic conductivities from 0.0173 × 10 to 80.9 × 10 S cm. Electrodes made from polysaccharides show good specific capacitances ranging from 8 to 753 F g and current densities from 0.05 to 5 A g. Active surfaces based on polysaccharides show promising results with power densities ranging from 0.15 to 16 100 mW m. These investigations suggest that in the future polysaccharides could become suitable materials to replace some synthetic polymers used in the fabrication of energy storage devices, including batteries, supercapacitors, and energy harvesting devices.

摘要

近年来,多糖已成为开发环保材料的一种有前景的替代物。基于多糖的材料主要在食品、包装和生物医学行业的应用中得到研究。然而,许多研究报告了能够改变多糖固有性质的加工路线和处理方法,使其可作为能源应用的材料。控制基于多糖材料的离子和电子电导率有助于开发固体电解质和电极。引入导电和半导电相可以改变多糖的介电常数,提高其电荷存储能力,使其可作为摩擦纳米发电机等能量收集装置的活性表面。多糖价格低廉且来源丰富,可被视为开发和改进能源装置的合适选择。本综述概述了与使用常见市售多糖和本地天然多糖(包括淀粉、壳聚糖、角叉菜胶、石莼多糖、琼脂和细菌纤维素)相关的主要研究工作。由多糖衍生的固体和凝胶电解质显示出广泛的离子电导率,范围从0.0173×10到80.9×10 S/cm。由多糖制成的电极显示出良好的比电容,范围从8到753 F/g,电流密度从0.05到5 A/g。基于多糖的活性表面显示出有前景的结果,功率密度范围从0.15到16100 mW/m²。这些研究表明,未来多糖可能成为替代用于制造储能装置(包括电池、超级电容器和能量收集装置)的一些合成聚合物的合适材料。

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