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铜/锌对聚丙烯酰胺水凝胶作为先进柔性电极材料的电化学性能的影响。

Effects of Cu/Zn on the electrochemical performance of polyacrylamide hydrogels as advanced flexible electrode materials.

作者信息

Faizan Syed, Shah Luqman Ali, Ye Daixin, Ahmad Fawad, Khan Musammir, Ismail Muhammad

机构信息

Polymer Laboratory, National Centre of Excellence in Physical Chemistry, University of Peshawar Peshawar 25120 Pakistan

Institute for Sustainable Energy, College of Sciences, Shanghai University Shanghai 200444 PR China.

出版信息

RSC Adv. 2022 Jun 30;12(30):19072-19085. doi: 10.1039/d2ra02391a. eCollection 2022 Jun 29.

Abstract

Previously, solid-state electrode materials have been utilized for the fabrication of energy storage devices; however, their application is impeded by their brittle nature and ion mobility problems. To address issues faced in such a modern era where energy saving and utility is of prior importance, a novel approach has been applied for the preparation of electrode materials based on polyacrylamide hydrogels embedded with reduced graphene oxide and transition metals, namely, Cu and Zn. The fabricated hydrogel exhibits high electrical properties and flexibility that make it a favorable candidate to be used in energy storage devices, where both elastic and electrical properties are desired. For the first time, a multi-cross-linked polyacrylamide hydrogel was constructed and compared in the presence of other electro-active materials such as reduced graphene oxide and transition metals. Polyacrylamide hydrogels embedded with reduced graphene oxide demonstrate excellent electrical properties such as specific capacitance, least impedance, low phase angle shift and AC conductivity of 22.92 F g, 2115 Ω, 2.88° and 0.67 μδ m respectively as compared to Cu- and Zn-loaded hydrogels, which block all available active sites causing an increase in impedance with a parallel decrease in capacitance. The capacitance retention and coulombic efficiency calculated were 88.22% and 77.23% respectively, indicating high stability up to 150 cycles at 0.1 A g. Storage moduli obtained were 10.52 kPa, which infers the more elastic nature of the hydrogel loaded with graphene oxide than that of other synthesized hydrogels.

摘要

此前,固态电极材料已被用于制造储能设备;然而,其脆性本质和离子迁移问题阻碍了它们的应用。为了解决在当今这个节能和实用性至关重要的时代所面临的问题,一种新颖的方法被应用于制备基于嵌入还原氧化石墨烯和过渡金属(即铜和锌)的聚丙烯酰胺水凝胶的电极材料。所制备的水凝胶具有高电性能和柔韧性,这使其成为用于储能设备的理想候选材料,因为储能设备需要弹性和电性能兼具的材料。首次构建了一种多交联聚丙烯酰胺水凝胶,并与其他电活性材料(如还原氧化石墨烯和过渡金属)存在时的情况进行了比较。与负载铜和锌的水凝胶相比,嵌入还原氧化石墨烯的聚丙烯酰胺水凝胶表现出优异的电性能,如比电容为22.92 F g、最小阻抗为2115 Ω、低相角偏移为2.88°以及交流电导率为0.67 μδ m,负载铜和锌的水凝胶会阻塞所有可用的活性位点,导致阻抗增加,电容并行降低。计算得到的电容保持率和库仑效率分别为88.22%和77.23%,表明在0.1 A g下高达150次循环时具有高稳定性。所获得的储能模量为10.52 kPa,这表明负载氧化石墨烯的水凝胶比其他合成水凝胶具有更具弹性的性质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6226/9244644/cb5e9019aff5/d2ra02391a-f1.jpg

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