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

Author:

Santa‐Cruz Larissa A.12,Mantovi Primaggio S.3ORCID,Loguercio Lara F.4,Galvão Rhauane A.5ORCID,Navarro Marcelo1ORCID,Passos Saulo T. A.6ORCID,Neto Brenno A. D.6ORCID,Tavares Fabiele C.7ORCID,Torresi Roberto M.3ORCID,Machado Giovanna2ORCID

Affiliation:

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

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

3. Laboratório de Materiais Eletroativos Universidade de São Paulo São Paulo CEP 05508-900, SP Brazil

4. Institute of Chemistry Universidade Federal do Rio Grande do Sul Rio Grande do Sul CEP 90650-001, RS Brazil

5. Graduate School of Medicine, Science and Technology Shinshu University 380-0928 Nagano Japan

6. Instituto de química e física Universidade de Brasília Brasília CEP 70904-970, DF Brazil

7. Campus Duque de Caxias Universidade Federal do Rio de Janeiro Rio de Janeiro CEP 25240-005, RJ Brazil

Abstract

AbstractClimate 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−1) and power density (230 W kg−1). As an electrolyte, the aqueous gel promotes a long device cycle life (3500 cycles) for 1 A g−1, 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.

Funder

Fundação de Amparo à Ciência e Tecnologia do Estado de Pernambuco

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior

Publisher

Wiley

Subject

General Energy,General Materials Science,General Chemical Engineering,Environmental Chemistry

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