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Rational synthesis and lithium storage properties of hierarchical nanoporous TiO2(B) assemblies with tailored crystallites and architectures.

Authors :
Ye, Xiaozhou
Hu, Huiru
Xiong, Huan
Wang, Yun
Ye, Jianfeng
Source :
Journal of Colloid & Interface Science. Oct2021, Vol. 600, p530-536. 7p.
Publication Year :
2021

Abstract

A novel synthetic approach based on the reaction between tetrabutyl titanate and normal fatty acids is proposed to fabricate hierarchical nanoporous TiO 2 (B) assemblies with tailored crystallites and architectures, which not only sheds new light on TiO 2 (B) crystallization, but also provides an effective solution for rational design of complex TiO 2 (B) micro-/nanoarchitectures for desired applications. [Display omitted] In comparison to the common anatase, rutile and brookite phases, the bronze phase TiO 2 (TiO 2 (B)) is rarely prepared, and obtaining unique TiO 2 (B) structures, especially those with complex configurations remains a great challenge. This work presents a completely new synthetic approach for fabricating hierarchical nanoporous TiO 2 (B) assemblies with tailored crystallites and architectures via the reaction between tetrabutyl titanate and normal fatty acids. Three different kinds of normal fatty acids, i.e., pentanoic acid, hexanoic acid, and nonanoic acid were utilized as the sole solvent. After a simple solvothermal treatment, nanoporous TiO 2 (B) microspheres constructed by [0 0 1]-elongated ultrathin nanorods, randomly aggregated ultrafine nanocrystals, and crystallographically oriented nanocrystals were successfully produced separately. Further investigation revealed that the morphology of the hierarchical assemblies could be modified by using foreign substrates to adjust the growth dynamics of TiO 2 (B) crystals. As a good illustration, by introducing graphene nanosheets into the tetrabutyl titanate-pentanoic acid system, nanosized [0 0 1]-elongated-ultrathin-nanorod-constructed nanoporous TiO 2 (B) assemblies were obtained, which exhibited superior performance as an anode in Li-ion batteries. This work can not only shed new light on TiO 2 (B) crystallization, but also provide an effective solution for the rational design of complex TiO 2 (B) micro-/nanoarchitectures for desired applications. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219797
Volume :
600
Database :
Academic Search Index
Journal :
Journal of Colloid & Interface Science
Publication Type :
Academic Journal
Accession number :
151122970
Full Text :
https://doi.org/10.1016/j.jcis.2021.05.053