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从可再生皮革废料制备用于水净化和储能的优质氮掺杂活性炭材料。

Superior nitrogen-doped activated carbon materials for water cleaning and energy storing prepared from renewable leather wastes.

机构信息

College of Biomass Sciences and Engineering/College of Agronomy and Biotechnology, China Agricultural University, Beijing 100193, China.

College of Biomass Sciences and Engineering/College of Agronomy and Biotechnology, China Agricultural University, Beijing 100193, China.

出版信息

Environ Int. 2020 Sep;142:105846. doi: 10.1016/j.envint.2020.105846. Epub 2020 Jun 22.

Abstract

The fabrication of nitrogen-doped activated carbons (N-ACs) from leather solid wastes (LSW), a huge underutilized bioresource, by different activation methods was investigated. N-AC prepared by KOH activation (named KNAC) exhibited superior physical and chemical properties with much higher BET surface area (2247 m g) and more abundant hierarchical micropores than those activated by nano-CaCO (CNAC) or by direct carbonization (NNAC). KOH activation decreased the total nitrogen content in KNAC, but it increased the ratio of surface nitrogen species. KOH activation also significantly promoted the conversion of nitrogen species in the carbon material to pyridinic N. Potential applications of the prepared N-ACs were evaluated, and they were tested as adsorbents to remove phenols from water and as the anodes of lithium batteries. The high surface area, abundant micropores, and plentiful surface pyridinic N guaranteed KNAC a superior nitrogen-doped activated carbon that could serve as an excellent adsorbent to remove phenols (282 mg/g) from waste water as well as an outstanding electrode material with a high and stable charge/discharge capacity (533.54 mAh g after 150th cycle). The strategy of LSW conversion to versatile N-ACs turns waste into treasure and could promote the sustainable development of our society.

摘要

从皮革固体废弃物(LSW)通过不同的活化方法制备氮掺杂活性炭(N-AC),LSW 是一种巨大的未充分利用的生物资源。由 KOH 活化(命名为 KNAC)制备的 N-AC 表现出优异的物理和化学性质,比由纳米 CaCO3 活化(CNAC)或直接碳化(NNAC)制备的 N-AC 具有更高的 BET 表面积(2247 m2/g)和更丰富的分级微孔。KOH 活化降低了 KNAC 中的总氮含量,但增加了表面氮物种的比例。KOH 活化还显著促进了碳材料中氮物种向吡啶氮的转化。评估了制备的 N-AC 的潜在应用,并将其用作吸附剂从水中去除酚类物质,以及用作锂电池的阳极。高比表面积、丰富的微孔和丰富的表面吡啶氮保证了 KNAC 是一种优异的氮掺杂活性炭,可作为从废水中去除酚类物质(282 mg/g)的优良吸附剂,以及具有高且稳定的充放电容量(150 次循环后为 533.54 mAh/g)的出色电极材料。将 LSW 转化为多功能 N-AC 的策略将废物变成了宝藏,并可以促进我们社会的可持续发展。

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