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通过氮修饰调节 ZnO-活性炭相互作用以增强 HS 去除能力。

Tuning the ZnO-activated carbon interaction through nitrogen modification for enhancing the HS removal capacity.

机构信息

State Key Laboratory of Coal Science and Technology, Co-founded by Shanxi Province and the Ministry of Science and Technology, Taiyuan University of Technology, West Yingze Street Number 79, Taiyuan 030024, People's Republic of China.

Department of Chemical Engineering, Taiyuan University of Technology, West Yingze Street Number 79, Taiyuan 030024, People's Republic of China.

出版信息

J Colloid Interface Sci. 2019 Nov 1;555:548-557. doi: 10.1016/j.jcis.2019.08.014. Epub 2019 Aug 5.

Abstract

Herein, an unusual strategy is reported to enhance the HS uptake capacity by varying the ZnO-support interaction and controlling the acid-basic environment of the pore channel; this is in place of the generally reported method of decreasing ZnO nanoparticle size and optimizing their porosity. With this regard, coal based activated carbon (AC) is selected as the support and the interaction with ZnO is tuned by introducing N species on AC surface through a soft nitriding strategy. Our strategy is confirmed to be prospective based on the fact that the N-modifying AC supported ZnO adsorbent show a maximum breakthrough sulfur capacity (BSC) of 62.5 mg S/g sorbent, two times larger than that without N-modification (30.5 mg S/g sorbent). The enhanced BSC is attributed to the introduced N species, which not only increases the basicity of the water film condensed in the pores, promoting the dissociation of HS and HO, but also influences the electronic structure of ZnO, accelerating the rate of lattice diffusion during in sulfidation process. It is also found that the high BSC of sorbent with N modification is related to the doped N concentrations, ZnO dispersion and the material porosity. This paper provides a new insight for designing supported ZnO based adsorbents.

摘要

本文报道了一种通过改变 ZnO 载体相互作用和控制孔道酸碱环境来提高 HS 吸收容量的策略,而不是通常报道的减小 ZnO 纳米粒子尺寸和优化其孔隙率的方法。在此方面,选择基于煤的活性炭 (AC) 作为载体,并通过软氮化策略在 AC 表面引入 N 物种来调整与 ZnO 的相互作用。我们的策略被证实是有前景的,因为 N 修饰的 AC 负载 ZnO 吸附剂的最大穿透硫容量 (BSC) 达到 62.5 mg S/g 吸附剂,是未进行 N 修饰的两倍(30.5 mg S/g 吸附剂)。增强的 BSC 归因于引入的 N 物种,它不仅增加了孔中凝聚水膜的碱性,促进 HS 和 HO 的离解,而且还影响 ZnO 的电子结构,加速硫化过程中的晶格扩散速率。还发现,具有 N 修饰的吸附剂的高 BSC 与掺杂的 N 浓度、ZnO 分散度和材料孔隙率有关。本文为设计基于 ZnO 的负载型吸附剂提供了新的见解。

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