Archive | 2021

Performance-tuning of PVA-based gel electrolytes by acid/PVA ratio and PVA molecular weight

 
 
 
 
 

Abstract


The significant breakthroughs of flexible gel electrolytes have attracted extensive attention in modern wearable electronic gadgets. The lack of all-around high-performing gels limits the advantages of such devices for practical applications. To this end, developing a multi-functional gel architecture with superior ionic conductivity while enjoying good mechanical flexibility is a bottleneck to overcome. Herein, an architecturally engineered gel, based on PVA and H3PO4 with different molecular weights of PVA for various PVA/H3PO4 ratios, was developed. The results show the dependence of ionic conductivity on molecular weight and also charge carrier concentration. Consequently, fine-tuning of PVA-based gels through a simple yet systematic and well-regulated strategy to achieve highly ion-conducting gels, with the highest ionic conductivity of 14.75\u2009±\u20091.39 mS\xa0cm-1 have been made to fulfill the requirement of flexible devices. More importantly, gel electrolytes possess good mechanical robustness while exhibiting high-elasticity (%766.66\u2009±\u200959.73), making it an appropriate candidate for flexible devices.

Volume 3
Pages 1-13
DOI 10.1007/S42452-021-04182-7
Language English
Journal None

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