Zhao Ting, Qian Ruifeng, Tang Yang, Yang Jing, Dai Yitao, Lee Wan In, Pan Jia Hong
MOE Key Laboratory of Resources and Environmental Systems Optimization, College of Environmental Science and Engineering, North China Electric Power University, Beijing 102206, China.
Guangxi Key Laboratory of Natural Polymer Chemistry and Physics, Nanning Normal University, Nanning 530001, China.
Langmuir. 2020 Jul 7;36(26):7447-7455. doi: 10.1021/acs.langmuir.0c01008. Epub 2020 Jun 18.
Although considerable progress has been achieved in the preparation of uniform hydrous TiO spheres (HTS) through the sol-gel process, there is plenty of room left in tailoring the size and morphology of HTS on the deep-submicron scale or even nanoscale since the diameters of the so far reported HTS are mostly on the (sub)micron scale (0.3-1.2 μm). Here, we develop a novel titanium tetraisopropoxide (TTIP)-organic acid (OA)-acetonitrile (ACN)-methanol (MeOH)-HO system, which facilitates the control of nanoporous HTS to the range of 50-300 nm. The synthetic parameters including OA, (co-)solvent, concentration of precursor, and reaction temperature are comprehensively optimized, aiming at reproducible preparation and precise size control. Among the various OAs, -valeric acid presents the best capability in controlling the spherical morphology and size uniformity. The synthesized amorphous HTS containing numerous micropores and mesopores show excellent hydrothermal stability and offer suitable self-template for the subsequent synthesis of mesoporous anatase TiO spheres (MAT) with a large surface area of 99.1 m/g. The obtained TiO deep-submicrospheres and nanospheres with tunable sizes show great potential in various research fields.