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与重水蒸汽接触的介孔二氧化钛纳米结构的变形

Deformation of Mesoporous Titania Nanostructures in Contact with D O Vapor.

作者信息

Song Lin, Rawolle Monika, Hohn Nuri, Gutmann Jochen S, Frielinghaus Henrich, Müller-Buschbaum Peter

机构信息

Lehrstuhl für Funktionelle Materialien, Physik-Department, Technische Universität München, James-Franck-Str. 1, 85748, Garching, Germany.

Fakultät für Chemie, Physikalische Chemie & CENIDE, Universität Duisburg-Essen, Universitätsstr. 5, 45141, Essen, Germany.

出版信息

Small. 2018 Jul;14(30):e1801461. doi: 10.1002/smll.201801461. Epub 2018 Jul 2.

Abstract

For many applications, mesoporous titania nanostructures are exposed to water or need to be backfilled via infiltration with an aqueous solution, which can cause deformations of the nanostructure by capillary forces. In this work, the degree of deformation caused by water infiltration in two types of mesoporous, nanostructured titania films exposed to water vapor is compared. The different types of nanostructured titania films are prepared via a polymer template assisted sol-gel synthesis in conjunction with a polymer-template removal at high-temperatures under ambient conditions versus nitrogen atmosphere. Information about surface and inner morphology is extracted by scanning electron microscopy and grazing incidence small-angle neutron scattering (GISANS) measurements, respectively. Furthermore, complementary information on thin film composition and porosity are probed via X-ray reflectivity. The backfilling induced deformation of near surface structures and structures inside the mesoporous titania films is determined by GISANS before and after D O infiltration. The respective atmosphere used for template removal influences the details of the titania nanostructure and strongly impacts the degree of water induced deformation. Drying of the films shows reversibility of the deformation.

摘要

对于许多应用而言,介孔二氧化钛纳米结构会接触水,或者需要通过水溶液浸润来回填,这可能会因毛细作用力导致纳米结构变形。在这项工作中,比较了两种暴露于水蒸气的介孔纳米结构二氧化钛薄膜因水浸润而引起的变形程度。不同类型的纳米结构二氧化钛薄膜是通过聚合物模板辅助溶胶 - 凝胶合成法制备的,同时在环境条件下与氮气气氛中高温去除聚合物模板。分别通过扫描电子显微镜和掠入射小角中子散射(GISANS)测量来获取有关表面和内部形态的信息。此外,通过X射线反射率探测薄膜组成和孔隙率的补充信息。在D₂O浸润前后,通过GISANS确定介孔二氧化钛薄膜近表面结构和内部结构的回填诱导变形。用于去除模板的相应气氛会影响二氧化钛纳米结构的细节,并强烈影响水诱导变形的程度。薄膜干燥显示出变形的可逆性。

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