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Porous In2O3 powders prepared by ultrasonic-spray pyrolysis as a NO2-sensing material: Utilization of polymethylmethacrylate microspheres synthesized by ultrasonic-assisted emulsion polymerization as a template

机译:超声波喷雾热解制备的多孔In2O3粉末作为NO2敏感材料:超声辅助乳液聚合合成的聚甲基丙烯酸甲酯微球的应用

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摘要

NO2-sensing properties of porous In2O3 (pr-In2O3) powders prepared by ultrasonic-spray pyrolysis employing polymethylmethacrylate (PMMA) microspheres as a template has been investigated in this study. The PMMA microspheres were synthesized in water by ultrasonic-assisted emulsion polymerization employing methyl methacrylate monomer, sodium lauryl sulfate as a surfactant and ammonium persulfate as an initiator. The PMMA microspheres synthesized was quite uniform and the particle size was ca. 60.2 nm (measured by dynamic light scattering). The microstructure of pr-In2O3 powders prepared was largely dependent on the kind of In2O3 sources. The pr-In2O3 which was prepared from In(NO3)3 as an In 2O3 source (pr-In2O3(N)) consisted of submicron-sized spherical particles with welldeveloped spherical mesopores (several tens of nanometers in pore diameter) and each oxide wall among pores was constructed with meso-sized In2O3 particles connected continuously. On the other hand, the pr-In2O3 which was prepared from InCl3 as an In2O3 source (pr-In2 O3(Cl)) was composed of a large number of dispersed meso-sized particles and a few submicron-sized dense spherical particles. In contrast, the morphology of conventional In2O3 powder (c-In 2O3) prepared by ultrasonic-spray pyrolysis of PMMAfree In(NO3)3 aqueous solution as a reference was relatively dense and roughly spherical with a diameter of ca. 100-700 nm. The responses to 1.0 and 10ppm NO2 of pr-In2O3 sensors in air were much larger than those of a c-In2O3(N) sensor in the temperature range of less than 250°C and 300°C, respectively. In addition, the response and recovery speeds of both the pr-In2O 3 sensors were much faster than those of the c-In2O 3(N) sensor, because of the well-developed porous structure of the pr-In2O3 sensors.
机译:本研究研究了以聚甲基丙烯酸甲酯(PMMA)微球为模板的超声喷雾热解法制备的多孔In2O3(pr-In2O3)粉末的NO2传感性能。通过甲基丙烯酸甲酯单体,十二烷基硫酸钠作为表面活性剂和过硫酸铵作为引发剂的超声辅助乳液聚合在水中合成PMMA微球。合成的PMMA微球非常均匀,粒径约为。 60.2 nm(通过动态光散射测量)。制备的pr-In2O3粉末的微观结构在很大程度上取决于In2O3来源的种类。由In(NO3)3作为In 2O3源(pr-In2O3(N))制备的pr-In2O3由亚微米尺寸的球形颗粒组成,该球形颗粒具有发达的球形中孔(孔径为数十纳米)和每个氧化物壁细孔间的In2O3颗粒连续连接。另一方面,由作为In 2 O 3源的InCl 3(pr-In 2 O 3(Cl))制备的pr-In 2 O 3由大量分散的介观尺寸的颗粒和一些亚微米尺寸的致密球形颗粒组成。相反,通过超声喷雾热解PMMAfree In(NO3)3水溶液作为参比制备的常规In2O3粉末(c-In 2O3)的形貌相对致密,并且呈球形,直径大约为1。 100-700 nm。在低于250°C和300°C的温度范围内,pr-In2O3传感器在空气中对1.0和10ppm NO2的响应分别比c-In2O3(N)传感器大得多。此外,由于pr-In2O3传感器的多孔结构完善,因此pr-In2O 3传感器的响应速度和恢复速度都比c-In2O 3(N)传感器快得多。

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