Synthesis of SiC nanowires on biochar surfaces by a simple direct method

IF 0.7 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of metals, materials and minerals Pub Date : 2023-08-31 DOI:10.55713/jmmm.v33i3.1717
Wasana Khongwong, C. Busabok, P. Ngernchuklin
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引用次数: 0

Abstract

Demand for air filters is crucially required due to PM 2.5. So, SiC nanowire networks are directly grown on biochar surfaces that serve strength and filtering purposes. The nanowires were prepared by spraying silicon powder on Lesser bulrush and Grey sedge biochars which acted as carbon sources and heating up to 1300℃ to 1500℃ for 1 h in Ar atmosphere. As a result, silicon powder evaporated and diffused on biochar surfaces. Meanwhile, CO vapor was generated from biochar reacted with O2 in the chamber. The evaporated silicon reacted with both C(s) and CO(g) to form cubic SiC nanowires. At the early stage of the reaction, large nuclei of SiC nanowires were formed at 1300℃. Those nuclei became smaller to promote nanowires when a higher temperature was applied before being disappeared at 1500℃. At such temperature, the obtained network structure SiC nanowires with 10 nm to 30 nm diameters on the outer and inner surfaces of biochars were completed, facilitating superior strength and filtering purposes. Comparatively, the Lesser bulrush provided higher strength than those of the Grey sedge ones, thus it was selected for the filtering efficiency test. The results showed that particulate filter efficiency was up to 97% but it was still over the range of pressure drop at 30 in H2O.  
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生物炭表面合成碳化硅纳米线的简单直接方法
由于PM 2.5,对空气过滤器的需求是至关重要的。因此,碳化硅纳米线网络直接生长在生物炭表面,以达到强度和过滤的目的。采用硅粉喷涂在以小黄草和灰莎草为碳源的生物炭上,在氩气中加热1300 ~ 1500℃1 h制备纳米线。结果,硅粉蒸发并扩散到生物炭表面。同时,生物炭在实验室内与O2反应产生CO蒸气。蒸发的硅与C(s)和CO(g)反应形成立方SiC纳米线。反应初期,SiC纳米线在1300℃形成大核。当温度升高时,这些核变小以促进纳米线的形成,在1500℃时消失。在此温度下,在生物炭的内外表面完成了直径为10 ~ 30 nm的网状结构SiC纳米线,具有优异的强度和过滤效果。相比之下,小毛草的强度高于灰莎草,因此选择小毛草进行过滤效率试验。结果表明,在H2O条件下,颗粒过滤效率可达97%,但仍超出压降范围。
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来源期刊
Journal of metals, materials and minerals
Journal of metals, materials and minerals MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
1.40
自引率
11.10%
发文量
0
期刊介绍: Journal of Metals, Materials and Minerals (JMMM) is a double-blind peer-reviewed international journal published 4 issues per year (starting from 2019), in March, June, September, and December, aims at disseminating advanced knowledge in the fields to academia, professionals and industrialists. JMMM publishes original research articles as well as review articles related to research and development in science, technology and engineering of metals, materials and minerals, including composite & hybrid materials, concrete and cement-based systems, ceramics, glass, refractory, semiconductors, polymeric & polymer-based materials, conventional & technical textiles, nanomaterials, thin films, biomaterials, and functional materials.
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