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将快速传质与高钛位点利用率集成到杂化两亲性TS@PMO催化剂中以实现高效无溶剂油酸甲酯环氧化反应

Integrated fast-mass transfer and high Ti-sites utilization into hybrid amphiphilic TS@PMO catalyst towards efficient solvent-free methyl oleate epoxidation.

作者信息

Wei Yue, Li Gang, Wang Cong, Guo Hongchen

机构信息

State Key Laboratory of Fine Chemicals, School of Chemical Engineering, Dalian University of Technology, Dalian 116024, China.

State Key Laboratory of Fine Chemicals, School of Chemical Engineering, Dalian University of Technology, Dalian 116024, China.

出版信息

J Colloid Interface Sci. 2021 Mar 15;586:233-242. doi: 10.1016/j.jcis.2020.10.087. Epub 2020 Oct 26.

Abstract

For solvent-free catalytic oxidations, low efficiency resulted from poor mass transfer and insufficient utilization of active centers remains a tough problem. Herein, we demonstrate a novel hybrid core-shell catalyst (TS@PMO) with an amphiphilic shell and a Ti-surface-enriched mesoporous TiO-SiO (TS) core to address this challenge. Such TS@PMO realizes its amphiphilicity via an ex situ formed periodic mesoporous organosilica (PMO) shell. Simultaneously, by a unique etching effect induced by organic precursor growth on [SiO] tetrahedra in TS core, active Ti sites are facilely enriched in near-surface layer of core and extra mesoporous cavities are introduced for substrate reservation. When applied for solvent-free epoxidation of methyl oleate (MO) with HO, TS@PMO exhibits remarkably boosted catalytic activity (X = 90.2%) and epoxide selectivity (S = 70.2%), overwhelming the unmodified titanosilicate (X = 63.7%, S = 49.2%) and Ti-containing organosilica (X = 39.8%, S = 25.0%). Such result benefits from an evidently enhanced interphase mass transfer and sufficiently accessible active Ti sites in TS@PMO. On the one hand, amphiphilic PMO shell can efficiently collect hydrophobic substrate and HO, while abundant mesopores in the shell offer open-path for them to access active sites in the core; on the other hand, an increased framework Ti (IV) density and their surface-enrichment in TS core greatly improve the utilization of active Ti sites. This study effectively makes up for the deficiencies of slow mass transfer and insufficient utilization of conventional titanosilicates in biphasic reactions, which paves a new avenue to exploit other hybrid catalysts for high-efficiency solvent-free catalysis.

摘要

对于无溶剂催化氧化反应,传质不佳和活性中心利用不充分导致的低效率仍是一个棘手的问题。在此,我们展示了一种新型的核壳杂化催化剂(TS@PMO),其具有两亲性外壳和富含钛表面的介孔TiO-SiO(TS)核,以应对这一挑战。这种TS@PMO通过异位形成的周期性介孔有机硅(PMO)外壳实现其两亲性。同时,通过TS核中[SiO]四面体上有机前驱体生长诱导的独特蚀刻效应,活性钛位点易于富集在核的近表面层,并引入额外的介孔腔用于底物保留。当用于以HO对油酸甲酯(MO)进行无溶剂环氧化反应时,TS@PMO表现出显著提高的催化活性(X = 90.2%)和环氧化物选择性(S = 70.2%),超过了未改性的钛硅酸盐(X = 63.7%,S = 49.2%)和含钛有机硅(X = 39.8%,S = 25.0%)。这一结果得益于TS@PMO中明显增强的相间传质和充分可及的活性钛位点。一方面,两亲性PMO外壳可以有效地收集疏水底物和HO,而外壳中丰富的介孔为它们通向核中的活性位点提供了开放路径;另一方面,TS核中框架Ti(IV)密度的增加及其表面富集极大地提高了活性钛位点的利用率。本研究有效地弥补了传统钛硅酸盐在双相反应中传质缓慢和利用不充分的不足,为开发其他用于高效无溶剂催化的杂化催化剂开辟了一条新途径。

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