The Effect Mechanism of Grain Size with Nanoscale and Microscale on Physical and Chemical Properties of Cu/SSZ-13 SCR Catalyst

微尺度化学 纳米尺度 材料科学 催化作用 机制(生物学) 粒度 化学工程 纳米技术 化学 复合材料 物理 工程类 有机化学 数学教育 数学 量子力学
作者
Yajuan Chen,Diming Lou,Yunhua Zhang,Piqiang Tan,Liang Fang,Zhiyuan Hu
出处
期刊:SAE technical paper series 卷期号:1
标识
DOI:10.4271/2024-01-4305
摘要

<div class="section abstract"><div class="htmlview paragraph">Selective catalytic reduction (SCR) technology is currently one of the most effective methods to reduce NOx emissions for engine. NH<sub>3</sub>-SCR technology is also considered to be the most promising hydrogen engine after-treatment device. This paper used Cu-SSZ-13, which is widely commercially available, as the research object, and explored the relationship between micron and nanoscale grain sizes through experimental methods such as BET, XRD, NH3-TPD, UV-vis-DRS and activity testing, the influence mechanism of micron-scale and nano-scale grain size on the morphology and properties of Cu/SSZ-13 catalyst was explored. The results show that the fresh nanoscale 900F sample has higher low-temperature NOx conversion efficiency, while the micron-scale 1800F sample has poor low-temperature activity and better high-temperature activity. This is closely related to its morphological characteristics, adsorption and desorption characteristics and dual-site properties. The specific surface area and total pore volume of the 900F sample are larger, but according to the diffraction peaks in XRD, its crystallinity is low, resulting in the high temperature activity of the 1800F sample being higher than that of the 900F sample. After SO<sub>2</sub> poisoning, the proportions of strong Lewis acid sites and Brønsted acid sites increased, resulting in an increase in both low-temperature and high-temperature activities of the 900S sample. And the activity of micron-scale samples decreases sharply, and the high-activity temperature window shrinks.</div></div>
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