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评价热解炭和水热炭衍生的活性炭作为生物吸附剂和超级电容器材料。

Evaluation of pyrochar and hydrochar derived activated carbons for biosorbent and supercapacitor materials.

机构信息

Department of Forest Sciences, Seoul National University, 599 Gwanak-ro, Gwanak-gu, Seoul, 08826, South Korea.

Institute of Green-Bio Science andTechnology, Seoul National University, Pyeongchang, Gangwon-do, 25354, South Korea.

出版信息

J Environ Manage. 2021 Nov 15;298:113436. doi: 10.1016/j.jenvman.2021.113436. Epub 2021 Aug 4.

Abstract

This study investigated effects of different thermal processes on characteristics of activated carbon to produce efficient biosorbents or supercapacitors using biomass resources. Pyrolysis char and hydrochar obtained from woody biomass were used as precursors for activated carbon under different atmospheric conditions (N and air). In order to provide functional groups on the carbon surface, activated carbon under N condition was subsequently acidified by HNO and the other was simultaneously acidified under air condition. Additionally, potential for application as Pb adsorbent and supercapacitor was evaluated. Thermochemical behaviors such as bonding cleavage and dehydration during activation processes were observed by TG and Py-GCMS analysis. Elemental analysis, FT-IR, Raman spectroscopy, and XPS analysis were carried out to confirm changes in structures of each carbon products. New plausible reaction mechanism for this observation was suggested with respect to the formation of a key intermediate in the presence of excess air. As for performance in applications, air activated carbon using hydrochar exhibited high versatility to function as both Pb adsorbent (41.1 mg/g) and energy storage material (185.9 F/g) with high specific surface area, mesopore ratio, surface functional groups.

摘要

本研究考察了不同热过程对生物质资源制备高效生物吸附剂或超级电容器用活性炭特性的影响。木质生物质热解焦和水热炭分别在不同气氛(N 和空气)下作为活性炭的前驱体。为了在碳表面提供官能团,N 气氛下的活性炭随后用 HNO 酸化,另一种在空气条件下同时酸化。此外,评估了作为 Pb 吸附剂和超级电容器的应用潜力。通过 TG 和 Py-GCMS 分析观察了活化过程中的键断裂和脱水等热化学行为。进行了元素分析、FT-IR、拉曼光谱和 XPS 分析,以确认每种碳产物结构的变化。针对存在过量空气时关键中间产物的形成,提出了这种观察结果的新的合理反应机制。就应用性能而言,使用水热炭的空气活化碳表现出多功能性,可作为 Pb 吸附剂(41.1 mg/g)和储能材料(185.9 F/g),具有高比表面积、中孔比、表面官能团。

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