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Template-induced structuring and tunable polymorphism of three-dimensionally ordered mesoporous (3DOm) metal oxides

机译:模板诱导的三维有序介孔(3DOm)金属氧化物的结构化和可调多态性

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摘要

Convectively assembled colloidal crystal templates, composed of size-tunable (ca. 15–50 nm) silica (SiO2) nanoparticles, enable versatile sacrificial templating of three-dimensionally ordered mesoporous (3DOm) metal oxides (MOx) at both mesoscopic and microscopic size scales. Specifically, we show for titania (TiO2) and zirconia (ZrO2) how this approach not only enables the engineering of the mesopore size, pore volume, and surface area but can also be leveraged to tune the crystallite polymorphism of the resulting 3DOm metal oxides. Template-mediated volumetric (i.e., interstitial) effects and interfacial factors are shown to preserve the metastable crystalline polymorphs of each corresponding 3DOm oxide (i.e., anatase TiO2 (A-TiO2) and tetragonal ZrO2 (t-ZrO2)) during high-temperature calcination. Mechanistic investigations suggest that this polymorph stabilization is derived from the combined effects of the template–replica (MOx/SiO2) interface and simultaneous interstitial confinement that limit the degree of coarsening during high-temperature calcination of the template–replica composite. The result is the identification of a facile yet versatile templating strategy for realizing 3DOm oxides with (i) surface areas that are more than an order of magnitude larger than untemplated control samples, (ii) pore diameters and volumes that can be tuned across a continuum of size scales, and (iii) selectable polymorphism.
机译:对流组装的胶体晶体模板,由尺寸可调(约15–50 nm)的二氧化硅(SiO2)纳米颗粒组成,可以在介观和微观尺寸尺度上对三维有序介孔(3DOm)金属氧化物(MOx)进行通用的牺牲模板化。具体来说,我们展示了二氧化钛(TiO2)和氧化锆(ZrO2)的方法不仅可以实现介孔尺寸,孔体积和表面积的工程设计,而且还可以用来调整所得3DOm金属氧化物的微晶多态性。显示了模板介导的体积(即间隙)效应和界面因素可在高温煅烧过程中保留每种相应的3DOm氧化物(即锐钛矿型TiO2(A-TiO2)和四方ZrO2(t-ZrO2))的亚稳态结晶多晶型物。 。机理研究表明,这种多晶型物的稳定作用源于模板-仿生物(MOx / SiO2)界面和同时的间隙约束的联合作用,这种结合限制了模板-仿生物在高温煅烧过程中的粗化程度。结果是确定了一种简便而通用的模板策略,用于实现3DOm氧化物,该氧化物具有(i)比未模板对照样品大一个数量级的表面积;(ii)可以在连续介质上调整的孔径和体积规模,以及(iii)可选择的多态性。

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