Layer-by-layer assembling redox wood electrodes for efficient energy storage

Tanveer Farid, Yiyun Wang, A. Razaq, Saghir Hussain, Weihua Tang
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Abstract

The exploration of redox-active organic materials and low tortuous thick-electrodes is attractive for energy storage. The in-situ valorized lignin on raw wood surface accompanied by layer-by-layer deposition of electro-active materials endow such spatially distributed wood electrodes with high specific capacitance. Here, we report a layer-by-layer assembled ca.1.5 mm-thick redox wood hybrid electrode with 20 mg cm-2 electro-active mass loading for efficient energy storage. The in-situ modified surface lignin in treated wood (TrW) holds promise as redox-active material with enriched nanoporosity, carbonyl functionalities, and multi-phase ionic transport structure. The carbon nanotubes (CNTs) networking with in-situ polymerized polypyrrole (PPy) nanorods three-dimensionally in the lumen of TrW afford a wool-like, highly porous nanostructure. Such a hierarchical structured PPy@CNTs@TrW electrode offers a high areal capacitance of 1.46 F cm-2 with an extraordinary energy density of 0.983 mWh cm-3 (3.68 Wh kg-1) and power density of 5.4 mW cm-3 (20.25 W kg-1). Here, the valorized surface lignin contributes contributes to electrochemical energy storage accompanied by spatially distributed PPy@CNTs in low tortuous electrodes. The electrode offers extremely low electrochemical impedance of 0.61 Ω electrode resistance and 1.57 Ω electrolyte resistance. The hybrid wood electrode showcases even higher conductivity and energy/power density than thin carbonized wood and other state-of-the-art thin electrodes made of highly conductive three-dimensional networks. This work highlights the potential of in-situ valorized lignin in developing high-performance eco-friendly thick-electrodes for electrochemical energy storage applications.
逐层组装氧化还原木电极,实现高效储能
对氧化还原活性有机材料和低曲折厚电极的探索对能量存储很有吸引力。在原木表面原位价化木质素,同时逐层沉积电活性材料,使这种空间分布的木材电极具有高比电容。在此,我们报告了一种逐层组装的氧化还原木混合电极,厚度约为 1.5 毫米,电活性物质含量为 20 毫克/厘米-2,可用于高效储能。经过原位修饰的木材(TrW)表面木质素具有丰富的纳米孔隙度、羰基功能性和多相离子传输结构,有望成为氧化还原活性材料。碳纳米管(CNTs)与原位聚合聚吡咯(PPy)纳米棒在木材(TrW)内腔中三维联网,形成了一种类似羊毛的高多孔纳米结构。这种分层结构的 PPy@CNTs@TrW 电极具有 1.46 F cm-2 的高面积电容,能量密度高达 0.983 mWh cm-3(3.68 Wh kg-1),功率密度为 5.4 mW cm-3(20.25 W kg-1)。在这种电极中,低曲折电极中空间分布的 PPy@CNT 与表面木质素一起为电化学储能做出了贡献。该电极的电化学阻抗极低,电极电阻为 0.61 Ω,电解质电阻为 1.57 Ω。与碳化薄木和其他由高导电性三维网络制成的最先进的薄电极相比,木质混合电极具有更高的导电性和能量/功率密度。这项工作凸显了原位估值木质素在开发用于电化学储能应用的高性能环保型厚电极方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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