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Enhanced isopropanol sensing of coral-like ZnO-ZrO2 composites

机译:增强的异丙醇感应珊瑚样ZnO-ZrO2复合材料

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Both p-type ZrO2 and n-type ZnO are widely adopted oxides towards trace gas detections; however, their combinations to achieve an enhanced gas sensing performance are rarely reported. Herein, we adopted a simple solution combustion technique to synthesize ZnO-ZrO2 composites for isopropanol sensing. The one-step combustion achieved coral-like macro/mesoporous hierarchical architectures. It is found that, when the Zr/Zn molar ratio is less than 0.02, all Zr atoms were doped into ZnO crystallites; whilst ZrO2 appeared when the ratio is beyond 0.03. When utilized to detect trace isopropanol in air, the response increases linearly with the increasing concentration of the target gas in the range of 10-1000 ppm. At the optimal operation temperature of 350 degrees C, the largest slope (0.18 ppm(-1)) is recorded for the ZnO-ZrO2 composite with a Zr/Zn molar ratio of 0.04 and the slope is 23 times that of pure ZnO (0.0078 ppm(-1)). It exhibits also a fast response time and recovery time of 19 s and 8 s, respectively, under 100 ppm isopropanol. The impressive gas sensing property can be contributed to both the macro-/mesoporous structure, which facilitates an intimate contact between the target gas and the sensing site, and the p-n junction induced built-in electric field, which favors the charge separation.
机译:P型ZrO2和N型ZnO都被广泛采用氧化物朝痕气体检测;然而,很少报道他们实现增强的气体感测性能的组合。在此,我们采用了一种简单的解决方案燃烧技术来合成ZnO-ZrO2复合材料以进行异丙醇感测。一步燃烧实现了珊瑚样宏/中孔分层架构。结果发现,当Zr / Zn摩尔比小于0.02时,将所有Zr原子掺杂到ZnO微晶中;当比率超过0.03时,ZrO2出现。当利用在空气中检测痕量异丙醇时,响应随着靶气体浓度的增加而导致10-1000ppm的浓度。在350℃的最佳操作温度下,为ZnO-ZrO2复合材料记录最大斜率(0.18ppm(-1)),Zr / Zn摩尔比为0.04,斜率为纯ZnO的23倍(0.0078 PPM(-1))。它也分别表现出快速响应时间和恢复时间,分别为100ppm异丙醇。令人印象深刻的气体传感特性可以有助于促进目标气体和传感场所之间的紧密接触,以及P-N结诱导的内置电场,这使得电荷分离。

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