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用于光/电化学应用的含水TiO胶体球的可控合成及自模板相变

Controllable synthesis and self-template phase transition of hydrous TiO colloidal spheres for photo/electrochemical applications.

作者信息

Ma Dongwei, Schneider Jenny, Lee Wan In, Pan Jia Hong

机构信息

MOE Key Laboratory of Resources and Environmental Systems Optimization, College of Environmental Science and Engineering, North China Electric Power University, Beijing 102206, China.

Department of Chemistry, Ludwig-Maximilians-Universität (LMU) München, Butenandtstraße 1 11, D-81377 München, Germany.

出版信息

Adv Colloid Interface Sci. 2021 Sep;295:102493. doi: 10.1016/j.cis.2021.102493. Epub 2021 Jul 21.

Abstract

Hydrous TiO colloidal spheres (HTCS) derived from the direct precipitation of titanium alkoxides have attracted continuous interests since 1982. Entering the 21st century, rapid progress in the development of structure-directing agents (SDAs) have enabled reproducible and size-controllable synthesis of highly uniform HTCS with diameters in the nano- to micro-meter range. The availability of various HTCS provides versatile self-templating platforms for the targeted synthesis of nanoporous TiO and titanate spheres with tunable composition, crystallographic phases, and internal structures for a variety of advanced photo/electrochemical applications. This review provides a historical overview for the evolution of HTCS, along with an insightful discussion for the formation mechanism of self-assembly of HTCS during the sol-gel process. Key synthetic parameters including SDA, solvent, reaction temperature and water dosage are discussed for the size and morphology control of HTCS with predictable textural properties. Then, we describe the synthetic strategies of nanoporous TiO and titanate spheres using various HTCS as self-templates. Here, the focus lies on the interactions between TiO nanobuilding blocks with precursors or media at the solid/liquid and solid/solid interfaces, the concurrent phase transitions, and the microstructural and morphological evolutions. Selective formation of crystal phase and internal structures (e.g., solid, hollow, core-shell, yolk-shell) are discussed by manipulating the crystallization kinetics. To further elucidate the composition-structure-property-performance relationship for the resulting nanoporous TiO and titanate spheres, their applications in photo(electro)catalysis, mesoscopic solar cells, and lithium-ion batteries are scrutinized. Finally, we share opinions on key challenges and perspectives for the future controllable preparation, formation mechanisms, and applications of HTCS and their crystalline derivatives.

摘要

自1982年以来,通过醇钛直接沉淀法制备的水合二氧化钛胶体球(HTCS)一直备受关注。进入21世纪,结构导向剂(SDA)的快速发展使得人们能够可重复且尺寸可控地合成直径在纳米到微米范围内的高度均匀的HTCS。各种HTCS的可得性为有针对性地合成具有可调组成、晶相和内部结构的纳米多孔二氧化钛和钛酸盐球提供了多功能的自模板平台,可用于各种先进的光/电化学应用。本文综述了HTCS的发展历程,并对溶胶 - 凝胶过程中HTCS自组装的形成机制进行了深入讨论。讨论了包括SDA、溶剂、反应温度和水用量在内的关键合成参数对HTCS尺寸和形貌的控制,以及可预测的织构性质。然后,我们描述了以各种HTCS为自模板合成纳米多孔二氧化钛和钛酸盐球的策略。这里,重点在于二氧化钛纳米结构单元与前驱体或介质在固/液和固/固界面处的相互作用、同时发生的相变以及微观结构和形貌的演变。通过控制结晶动力学讨论了晶相和内部结构(如实心、空心、核壳、蛋黄壳)的选择性形成。为了进一步阐明所得纳米多孔二氧化钛和钛酸盐球的组成 - 结构 - 性能 - 应用关系,对它们在光(电)催化、介观太阳能电池和锂离子电池中的应用进行了详细研究。最后,我们对HTCS及其结晶衍生物未来可控制备、形成机制和应用的关键挑战和前景发表了看法。

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