Supercritical hydrothermal synthesis of silver nanoparticles, composites, and their characterizations

Q4 Chemistry
N. Byamba-Ochir, Nemekhbayar Davaadorj, B. Buyankhishig, Enkhtuul Surenjav
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引用次数: 0

Abstract

Silver nanoparticles (AgNPs) and silver nanoparticles doped activated carbon (AC-Ag) composite materials were synthesized by hydrothermal processes in supercritical water conditions (29 MPa and 400 °C) using batch reactor. We studied the influence of the precursor solution concentration, reaction temperature under the hydrothermal conditions, and synthesis time on the properties of synthesized materials. The properties of plain AgNPs and AC-Ag composite materials synthesized in supercritical water, including crystallinity, particle size, and molecular interactions between AC and Ag were investigated, comprehensively. Compared to the plain AgNPs, the activated carbon-supported Ag nanocomposite was synthesized faster due to the active functional groups of activated carbon. Furthermore, the FTIR results reveal that the silver nanoparticles are attached to the activated carbon surface in the presence of oxygen bonded carbonyl and carboxyl groups. The nano-sized metal silver particles were observed on the AC surface when analyzed by TEM and XRD. All results imply that the supercritical water condition allows the formation of silver particles less than 100 nm either in the form of plain particles or deposited on the activated carbon surface using the silver acetate precursor solution. This environmentally benign supercritical hydrothermal process can replace the conventional method and become a novel synthesis method for preparing various new materials.
超临界水热合成纳米银及其复合材料及其表征
采用间歇式反应器,在超临界水(29MPa和400°C)条件下,通过水热法合成了银纳米粒子(AgNPs)和银纳米粒子掺杂活性炭(AC-Ag)复合材料。研究了前驱体溶液浓度、水热条件下的反应温度和合成时间对合成材料性能的影响。全面研究了在超临界水中合成的普通AgNPs和AC-Ag复合材料的性能,包括结晶度、颗粒尺寸以及AC和Ag之间的分子相互作用。与普通AgNPs相比,由于活性炭的活性官能团,活性炭负载的Ag纳米复合材料的合成速度更快。此外,FTIR结果表明,在存在氧键合的羰基和羧基的情况下,银纳米颗粒附着在活性炭表面。通过TEM和XRD分析,在AC表面观察到纳米尺寸的金属银颗粒。所有结果都表明,超临界水条件允许形成小于100nm的银颗粒,无论是以普通颗粒的形式还是使用乙酸银前体溶液沉积在活性炭表面上。这种环境友好的超临界水热工艺可以取代传统方法,成为制备各种新材料的新合成方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Mongolian Journal of Chemistry
Mongolian Journal of Chemistry Materials Science-Materials Chemistry
CiteScore
1.10
自引率
0.00%
发文量
5
审稿时长
20 weeks
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