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基于盐水和海藻的凝胶生物聚合物电解质以支持可持续超级电容器的大规模生产。

Gel Biopolymer Electrolytes Based on Saline Water and Seaweed to Support the Large-Scale Production of Sustainable Supercapacitors.

作者信息

Santa-Cruz Larissa A, Mantovi Primaggio S, Loguercio Lara F, Galvão Rhauane A, Navarro Marcelo, Passos Saulo T A, Neto Brenno A D, Tavares Fabiele C, Torresi Roberto M, Machado Giovanna

机构信息

Programa de Pós-Graduação em Ciência de Materiais, Universidade Federal de Pernambuco, Recife, CEP 50740-560, PE, Brazil.

Laboratório de Materiais Nanoestruturados (LMNano), Centro de Tecnologias Estratégicas do Nordeste (CETENE), Recife, CEP 50740-545, PE, Brasil.

出版信息

ChemSusChem. 2024 Jan 22;17(2):e202300884. doi: 10.1002/cssc.202300884. Epub 2023 Nov 15.

DOI:10.1002/cssc.202300884
PMID:37707501
Abstract

Climate change and the demand for clean energy have challenged scientists worldwide to produce/store more energy to reduce carbon emissions. This work proposes a conductive gel biopolymer electrolyte to support the sustainable development of high-power aqueous supercapacitors. The gel uses saline water and seaweed as sustainable resources. Herein, a biopolymer agar-agar, extracted from red algae, is modified to increase gel viscosity up to 17-fold. This occurs due to alkaline treatment and an increase in the concentration of the agar-agar biopolymer, resulting in a strengthened gel with cohesive superfibres. The thermal degradation and agar modification mechanisms are explored. The electrolyte is applied to manufacture sustainable and flexible supercapacitors with satisfactory energy density (0.764 Wh kg ) and power density (230 W kg ). As an electrolyte, the aqueous gel promotes a long device cycle life (3500 cycles) for 1 A g , showing good transport properties and low cost of acquisition and enabling the supercapacitor to be manufactured outside a glove box. These features decrease the cost of production and favor scale-up. To this end, this work provides eco-friendly electrolytes for the next generation of flexible energy storage devices.

摘要

气候变化和对清洁能源的需求促使全球科学家生产/存储更多能源以减少碳排放。这项工作提出了一种导电凝胶生物聚合物电解质,以支持高功率水系超级电容器的可持续发展。该凝胶使用盐水和海藻作为可持续资源。在此,从红藻中提取的生物聚合物琼脂被改性,使凝胶粘度提高了17倍。这是由于碱处理和琼脂生物聚合物浓度的增加,导致形成了具有粘性超纤维的强化凝胶。探索了热降解和琼脂改性机制。该电解质被应用于制造具有令人满意的能量密度(0.764 Wh kg)和功率密度(230 W kg)的可持续且灵活的超级电容器。作为电解质,水性凝胶在1 A g时可实现较长的器件循环寿命(3500次循环),显示出良好的传输性能和较低的获取成本,并使超级电容器能够在手套箱外制造。这些特性降低了生产成本并有利于扩大规模。为此,这项工作为下一代灵活储能设备提供了环保型电解质。

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