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本文引用的文献

1
Preparation of Biopolymer Aerogels Using Green Solvents.使用绿色溶剂制备生物聚合物气凝胶
J Vis Exp. 2016 Jul 4(113):54116. doi: 10.3791/54116.
2
Encapsulating Cytochrome c in Silica Aerogel Nanoarchitectures without Metal Nanoparticles while Retaining Gas-phase Bioactivity.
J Vis Exp. 2016 Mar 1(109):e53802. doi: 10.3791/53802.
3
Synthesis and Functionalization of 3D Nano-graphene Materials: Graphene Aerogels and Graphene Macro Assemblies.三维纳米石墨烯材料的合成与功能化:石墨烯气凝胶和石墨烯宏观组装体
J Vis Exp. 2015 Nov 5(105):e53235. doi: 10.3791/53235.
4
Preparing silica aerogel monoliths via a rapid supercritical extraction method.通过快速超临界萃取法制备二氧化硅气凝胶整体材料。
J Vis Exp. 2014 Feb 28(84):e51421. doi: 10.3791/51421.
5
Chemistry of aerogels and their applications.气凝胶的化学性质及其应用
Chem Rev. 2002 Nov;102(11):4243-65. doi: 10.1021/cr0101306.

通过快速超临界萃取制备催化气凝胶的制备与测试

Fabrication and Testing of Catalytic Aerogels Prepared Via Rapid Supercritical Extraction.

作者信息

Anderson Ann M, Bruno Bradford A, Donlon Elizabeth A, Posada Luisa F, Carroll Mary K

机构信息

Department of Mechanical Engineering, Union College.

Department of Chemistry, Union College.

出版信息

J Vis Exp. 2018 Aug 31(138):57075. doi: 10.3791/57075.

DOI:10.3791/57075
PMID:30222154
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6235061/
Abstract

Protocols for preparing and testing catalytic aerogels by incorporating metal species into silica and alumina aerogel platforms are presented. Three preparation methods are described: (a) the incorporation of metal salts into silica or alumina wet gels using an impregnation method; (b) the incorporation of metal salts into alumina wet gels using a co-precursor method; and (c) the addition of metal nanoparticles directly into a silica aerogel precursor mixture. The methods utilize a hydraulic hot press, which allows for rapid (<6 h) supercritical extraction and results in aerogels of low density (0.10 g/mL) and high surface area (200-800 m/g). While the work presented here focuses on the use of copper salts and copper nanoparticles, the approach can be implemented using other metal salts and nanoparticles. A protocol for testing the three-way catalytic ability of these aerogels for automotive pollution mitigation is also presented. This technique uses custom-built equipment, the Union Catalytic Testbed (UCAT), in which a simulated exhaust mixture is passed over an aerogel sample at a controlled temperature and flow rate. The system is capable of measuring the ability of the catalytic aerogels, under both oxidizing and reducing conditions, to convert CO, NO and unburned hydrocarbons (HCs) to less harmful species (CO2, H2O and N2). Example catalytic results are presented for the aerogels described.

摘要

介绍了通过将金属物种引入二氧化硅和氧化铝气凝胶平台来制备和测试催化气凝胶的方案。描述了三种制备方法:(a) 使用浸渍法将金属盐引入二氧化硅或氧化铝湿凝胶中;(b) 使用共前驱体法将金属盐引入氧化铝湿凝胶中;(c) 将金属纳米颗粒直接添加到二氧化硅气凝胶前驱体混合物中。这些方法使用液压热压机,可实现快速(<6小时)超临界萃取,得到低密度(0.10 g/mL)和高比表面积(200 - 800 m²/g)的气凝胶。虽然这里介绍的工作重点是使用铜盐和铜纳米颗粒,但该方法也可使用其他金属盐和纳米颗粒来实施。还介绍了一种测试这些气凝胶在减轻汽车污染方面的三元催化能力的方案。该技术使用定制设备联合催化试验台(UCAT),在该试验台中,模拟废气混合物在受控温度和流速下通过气凝胶样品。该系统能够测量催化气凝胶在氧化和还原条件下将一氧化碳、一氧化氮和未燃烧碳氢化合物(HCs)转化为危害较小的物质(二氧化碳、水和氮气)的能力。给出了所述气凝胶的催化结果示例。