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用于超级电容器、传感器和染料吸附剂应用的木质素磺酸盐离子水凝胶的制备。

Preparation of lignosulfonate ionic hydrogels for supercapacitors, sensors and dye adsorbent applications.

机构信息

College of Material Engineering, Fujian Agriculture and Forestry University, Fuzhou 350108, China; Institute of Fuel Research and Development, Bangladesh Council of Scientific and Industrial Research, Dhaka 1205, Bangladesh.

College of Material Engineering, Fujian Agriculture and Forestry University, Fuzhou 350108, China.

出版信息

Int J Biol Macromol. 2021 Sep 30;187:189-199. doi: 10.1016/j.ijbiomac.2021.07.021. Epub 2021 Jul 12.

DOI:10.1016/j.ijbiomac.2021.07.021
PMID:34265336
Abstract

Lignin, an abundant natural polymer but presently under-utilized, has received much attention for its green/sustainable advantages. Herein, we report a facile method to fabricate lignosulfonate (LS) ionic hydrogels by simple crosslinking with poly (ethylene glycol) diglycidyl ether (PEGDGE). The as-obtained LS-PEGDGE hydrogels were comprehensively characterized by mechanical measurements, FT-IR, and SEM. The rich sulfonic and phenolic hydroxyl groups in LS hydrogels play key roles in imparting multifunctional smart properties, such as adhesiveness, conducting, sensing and dye adsorption, as well as superconductive behavior when increasing the moisture content. The hydrogels have a high adsorption capacity for cationic dyes, using methylene blue as a model, reaching 211 mg·g. As a moist-induced power generator, the maximum output voltage is 181 mV. The LS-PEGDGE hydrogel-based flexible strain sensors exhibit high sensitivity when detecting human movements. As the hydrogel electrolyte, the assembled supercapacitor shows high specific capacitance of 236.9 F·g, with the maximum energy density of 20.61 Wh·kg, power density of 2306.4 W·kg, and capacitance retention of 92.9% after 10,000 consecutive charge-discharge cycles. Therefore, this multifunctional LS hydrogels may have promising applications in various fields, providing a new platform for the value-added utilization of lignin from industrial waste.

摘要

木质素是一种丰富的天然聚合物,但目前尚未得到充分利用,因其绿色/可持续的优势而受到广泛关注。在此,我们报告了一种通过与聚乙二醇二缩水甘油醚(PEGDGE)简单交联来制备木质素磺酸盐(LS)离子水凝胶的简便方法。通过机械测量、FT-IR 和 SEM 对所得到的 LS-PEGDGE 水凝胶进行了全面表征。LS 水凝胶中丰富的磺酸基和酚羟基在赋予多功能智能特性方面起着关键作用,例如粘附性、导电性、传感和染料吸附,以及在增加水分含量时的超导行为。水凝胶对阳离子染料具有高吸附能力,以亚甲蓝为模型,达到 211 mg·g。作为一种湿致功率发生器,最大输出电压为 181 mV。基于 LS-PEGDGE 水凝胶的柔性应变传感器在检测人体运动时具有高灵敏度。作为水凝胶电解质,组装的超级电容器具有 236.9 F·g 的高比电容,最大能量密度为 20.61 Wh·kg,功率密度为 2306.4 W·kg,经过 10000 次连续充放电循环后电容保持率为 92.9%。因此,这种多功能 LS 水凝胶在各个领域可能具有广阔的应用前景,为工业废料中木质素的增值利用提供了新的平台。

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