Premium
Monomolecular‐Layer Ba 5 Ta 4 O 15 Nanosheets: Synthesis and Investigation of Photocatalytic Properties
Author(s) -
Xu T.G.,
Zhang C.,
Shao X.,
Wu K.,
Zhu Y.F.
Publication year - 2006
Publication title -
advanced functional materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.069
H-Index - 322
eISSN - 1616-3028
pISSN - 1616-301X
DOI - 10.1002/adfm.200500849
Subject(s) - materials science , photocatalysis , monolayer , nanosheet , hydrothermal circulation , rhodamine b , chemical engineering , hydrothermal synthesis , perovskite (structure) , dissolution , crystal growth , nanotechnology , crystallography , catalysis , organic chemistry , chemistry , engineering
Abstract Monomolecular‐layer perovskite Ba 5 Ta 4 O 15 nanosheets with hexagonal structure have been synthesized by a hydrothermal method. The thickness of the nanosheets is about 1.1 nm, which corresponds to a monolayer of Ba 5 Ta 4 O 15 molecules, with the lateral size ranging from 50 to 200 nm. The optimal conditions for the formation of the nanosheets are maintaining the reactants above 270 °C for 24 h. A dissolution–recrystallization mechanism is suggested based on observations of the factors that influence nanosheet formation, such as reaction time, temperature, and basicity. Formation of Ba 5 Ta 4 O 15 nanosheets takes precedence over other nanostructures under high concentrations of OH – because the hindering effect of OH – ions on the c ‐axis growth is strong. Thus, the extended growth rate of polyhedrons on one monolayer is much faster than the superposition rate of the monolayer, and the crystal grows more easily along the a ‐ and b ‐planes. The Ba 5 Ta 4 O 15 nanosheets show a high photocatalytic activity in the degradation of Rhodamine B and gaseous formaldehyde. The layered perovskite probably affects the photocatalytic activity by promoting the charge separation and delocalization of photogenerated electrons and holes.