Department of Chemistry, College of Sciences, Northeastern University, Shenyang, Liaoning 110819, PR China.
Dalton Trans. 2020 Jun 23;49(24):8114-8121. doi: 10.1039/d0dt01521k.
A rational design and directional synthesis of well-defined porous metal oxide heterostructures remains a challenge for the fabrication of new gas sensors with enhanced sensing properties. Herein, a novel hierarchical heterostructure of α-Fe2O3@α-MoO3 microcubes was prepared by applying a self-sacrifice template strategy, in which a porous metal-organic framework (MOF) was used as the precursor with the partial insertion of OH- and MoO42- and extraction of [Fe(CN)6]34- followed by heating treatment. Benefiting from the porous microcubic structural characteristic, the α-Fe2O3@α-MoO3 heterostructures exhibited excellent selectivity and high sensitivity for triethylamine gas with the highest response value (Ra/Rg) of 18.64 under the operating temperature of 240 °C. The experimental results also revealed that the material showed a fast response and recovery time (12 s/106 s) and excellent repeatability for at least 20 days. This feasible synthetic strategy may provide a versatile and controlled way to prepare other polymetal oxide-based heterostructures with improved sensing performance.
合理设计和定向合成具有明确孔结构的金属氧化物异质结构仍然是制造具有增强传感性能的新型气体传感器的挑战。在此,通过应用自牺牲模板策略制备了新颖的α-Fe2O3@α-MoO3 微立方体的分级异质结构,其中多孔金属有机骨架(MOF)用作前体,部分插入 OH-和 MoO42-并提取 [Fe(CN)6]34-,然后进行热处理。受益于多孔微立方结构的特点,α-Fe2O3@α-MoO3 异质结构对三乙胺气体表现出优异的选择性和高灵敏度,在 240°C 的工作温度下,响应值(Ra/Rg)最高为 18.64。实验结果还表明,该材料表现出快速的响应和恢复时间(12 s/106 s)以及至少 20 天的优异重复性。这种可行的合成策略可能为制备具有改进传感性能的其他多金属氧化物基异质结构提供一种通用且可控的方法。