Binary Biomass-Based Electrolyte Films for High-Performance All-Solid-State Supercapacitor

电解质 超级电容器 电化学 材料科学 离子液体 化学工程 离子电导率 多孔性 电导率 功率密度 电极 复合材料 化学 有机化学 物理化学 工程类 功率(物理) 物理 量子力学 催化作用
作者
Rui Lou,Guocheng Zhang,Taoyuan Niu,Long He,Ying Su,Guodong Wei
出处
期刊:Polymers [MDPI AG]
卷期号:16 (19): 2772-2772
标识
DOI:10.3390/polym16192772
摘要

Solid-state electrolytes have received widespread attention for solving the problem of the leakage of liquid electrolytes and effectively improving the overall performance of supercapacitors. However, the electrochemical performance and environmental friendliness of solid-state electrolytes still need to be further improved. Here, a binary biomass-based solid electrolyte film (LSE) was successfully synthesized through the incorporation of lignin nanoparticles (LNPs) with sodium alginate (SA). The impact of the mass ratio of SA to LNPs on the microstructure, porosity, electrolyte absorption capacity, ionic conductivity, and electrochemical properties of the LSE was thoroughly investigated. The results indicated that as the proportion of SA increased from 5% to 15% of LNPs, the pore structure of the LSE became increasingly uniform and abundant. Consequently, enhancements were observed in porosity, liquid absorption capacity, ionic conductivity, and overall electrochemical performance. Notably, at an SA amount of 15% of LNPs, the ionic conductivity of the resultant LSE-15 was recorded at 14.10 mS cm−1, with the porosity and liquid absorption capacity reaching 58.4% and 308%, respectively. LSE-15 was employed as a solid electrolyte, while LNP-based carbon aerogel (LCA) served as the two electrodes in the construction of a symmetric all-solid-state supercapacitor (SSC). The SSC device demonstrated exceptional electrochemical storage capacity, achieving a specific capacitance of 197 F g−1 at 0.5 A g−1, along with a maximum energy and power density of 27.33 W h kg−1 and 4998 W kg−1, respectively. Furthermore, the SSC device exhibited highly stable electrochemical performance under extreme conditions, including compression, bending, and both series and parallel connections. Therefore, the development and application of binary biomass-based solid electrolyte films in supercapacitors represent a promising strategy for harnessing high-value biomass resources in the field of energy storage.
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