Issue 28, 2023

Controllable synthesis and formation mechanism of pure and Fe-doped h-MoO3 microrods under hydrothermal reaction conditions

Abstract

In the present work, pure and Fe-doped h-MoO3 microrods were successfully synthesized via the hydrothermal method using (NH4)6Mo7O24·4H2O and concentrated HNO3 as the raw materials. Various technologies, such as XRD, FESEM-EDS, TEM, and SAED pattern, were adopted to characterize the resulting products. The result showed that the optimum conditions for the controllable synthesis of pure h-MoO3 microrods were 150 °C, 16 h, and with a solid–liquid ratio of 1 : 2. Due to the similar ionic radius of Fe3+ and Mo6+, it was discovered that adding a small amount of Fe dopant (1–5 mass%) would not lead to an obvious change in the lattice parameters; however, the particle size of the as-synthesized Fe-doped h-MoO3 would be increased gradually. Also, the photocatalytic performances of the Fe-doped h-MoO3 increased first and then decreased with increasing the amount of Fe dopant. NH4+ and OH existing in the system played crucial roles on the formation of h-MoO3 microrods, likely by acting as structure-directing and stabilizing agents for h-MoO3 crystalline. In addition, it was found that the transformation process from h-MoO3 microrods to α-MoO3 nanofibers obeyed the dissolution–recrystallization mechanism.

Graphical abstract: Controllable synthesis and formation mechanism of pure and Fe-doped h-MoO3 microrods under hydrothermal reaction conditions

Article information

Article type
Paper
Submitted
23 Apr 2023
Accepted
20 Jun 2023
First published
21 Jun 2023

CrystEngComm, 2023,25, 4089-4099

Controllable synthesis and formation mechanism of pure and Fe-doped h-MoO3 microrods under hydrothermal reaction conditions

H. Li, L. Wang and F. Du, CrystEngComm, 2023, 25, 4089 DOI: 10.1039/D3CE00411B

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