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Self-Assembly Template Driven 3D Inverse Opal Microspheres Functionalized with Catalyst Nanoparticles Enabling a Highly Efficient Chemical Sensing Platform

机译:用催化剂纳米粒子官能化的自组装模板驱动3D逆蛋白石微球,使高效的化学传感平台实现了高效的化学传感平台

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摘要

The design of semiconductor metal oxides (SMOs) with well-ordered porous structure has attracted tremendous attention owing to their larger specific surface area. Herein, three-dimensional inverse opal In2O3 microspheres (3D-IO In2O3 MSs) were fabricated through one-step ultrasonic spray pyrolysis (USP) which employed self-assembly sulfonated polystyrene (S-PS) spheres as a sacrificial template. The spherical pores observed in the 3D-IO In2O3 MSs had diameters of about 4 and 80 nm. Subsequently, the catalytic palladium oxide nanoparticles (PdO NPs) were loaded on 3D-IO In2O3 MSs via a simple impregnation method, and their gas sensing properties were investigated. In a comparison with pristine 3D-IO In2O3 MSs, the 3D-IO PdO@In2O3 MSs exhibited a 3.9 times higher response (R-air/R-gas = 50.9) to 100 ppm acetone at 250 degrees C and a good acetone selectivity. The detection limit for acetone could extend down to ppb level. Furthermore, the 3D-IO PdO@In2O3 MSs-based sensor also possess good long-term stability. The extraordinary sensing performance can be attributed to the novel 3D periodic porous structure, highly three-dimensional interconnection, larger specific surface area, size-tunable (meso- and macroscale) bimodal pores, and PdO NP catalysts.
机译:由于其较大的比表面积,具有良好有序多孔结构的半导体金属氧化物(SMOS)的设计引起了巨大的关注。这里,通过使用自组装磺化聚苯乙烯(S-PS)球体作为牺牲模板,通过一步超声波喷雾热解(USP)制造三维反蛋白蛋白(3D-IO IN2O3 MS)。在3D-IO IN2O3 MS中观察到的球形孔径约为4和80nm的直径。随后,通过简单的浸渍方法将催化钯氧化物纳米颗粒(PDO NPS)在3D-IO IN2O3 MS上加载,并研究了它们的气体传感性能。在与原始3D-IO IN2O3 MS的比较中,3D-IO PDO @ IN2O3 MS在250℃下呈现3.9倍较高的响应(R-AIR / R-GAL = 50.9)至100ppm丙酮,并且致丙酮选择性良好。丙酮的检测限延伸至PPB水平。此外,基于3D-IO PDO @ In2O3的传感器也具有良好的长期稳定性。非凡的感测性能可以归因于新颖的3D周期多孔结构,高度三维互连,较大的比表面积,尺寸可调(Meso和Macroscale)双峰孔,以及PDO NP催化剂。

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