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基于商品热塑性弹性体的大孔有序介孔材料的模板合成

Commodity Thermoplastic Elastomer-Enabled Templated Synthesis of Large-Pore Ordered Mesoporous Materials.

作者信息

Griffin Anthony, Frame Parker, Xiang Yizhi, Qiang Zhe

机构信息

School of Polymer Science and Engineering, University of Southern Mississippi, Hattiesburg, Mississippi 39406, United States.

Department of Chemical and Biomedical Engineering, University of Missouri, Columbia, Missouri 65211, United States.

出版信息

ACS Omega. 2025 Mar 12;10(11):11554-11561. doi: 10.1021/acsomega.5c00553. eCollection 2025 Mar 25.

Abstract

Fabrication of ordered mesoporous materials (OMMs) has predominantly relied on templating-based methods. However, these methods are constrained by several limitations, especially the limited pore sizes attainable with commercially available surfactants used as structure-directing agents. To unlock the full potential of the OMMs, it is essential to develop synthetic strategies that facilitate the production of large-pore OMMs using scalable processes and cost-effective precursors. This work demonstrates the use of thermoplastic elastomer (TPE)-derived carbon replicas for synthesizing ordered mesoporous silica (OMS) and metal oxides (OMMOs) via precursor infiltration and template removal. The nanostructural evolution of the resulting inorganic materials was systematically investigated. Specifically, using tetraethyl orthosilicate (TEOS) as a silica precursor, this method can produce an OMS with relatively large pores. To establish the generalizability of this process, the fabrication approach was extended to other commercially available TPEs with varied chemical compositions and molecular weights while consistently resulting in ordered structures. Additionally, this synthetic strategy can be successfully applied to the production of OMMOs, including tin and titanium oxide matrix chemistries, yielding pore sizes of 16.0 and 19.2 nm, respectively. By developing a general method and using low-cost precursors, this work presents a scalable approach for fabricating large-pore OMMs with tunable pore textures and matrix chemistries.

摘要

有序介孔材料(OMMs)的制备主要依赖于基于模板的方法。然而,这些方法受到若干限制,特别是使用作为结构导向剂的市售表面活性剂可获得的孔径有限。为了充分发挥OMMs的潜力,开发能够使用可扩展工艺和具有成本效益的前驱体来生产大孔OMMs的合成策略至关重要。这项工作展示了使用热塑性弹性体(TPE)衍生的碳复制品,通过前驱体渗透和模板去除来合成有序介孔二氧化硅(OMS)和金属氧化物(OMMOs)。系统地研究了所得无机材料的纳米结构演变。具体而言,使用正硅酸四乙酯(TEOS)作为二氧化硅前驱体,该方法可以生产具有相对大孔的OMS。为了确立该工艺的通用性,将制备方法扩展到其他具有不同化学成分和分子量的市售TPEs,同时始终能得到有序结构。此外,这种合成策略可以成功应用于生产OMMOs,包括氧化锡和氧化钛基体化学组成,分别产生孔径为16.0和19.2nm的材料。通过开发一种通用方法并使用低成本前驱体,这项工作提出了一种可扩展的方法,用于制备具有可调孔结构和基体化学组成的大孔OMMs。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/204d/11947817/3f1698d01ea5/ao5c00553_0001.jpg

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