纳米CuO在SnO/ sub2 /膜上改善H/ sub2 /S气体传感器的响应

A. Chowdhuri, V. Gupta, R. Kumar, P. Patanjali, S. Mozumdar, K. Sreenivas
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引用次数: 0

摘要

在我们早期的工作中,我们观察到一种由均匀分布在SnO/ sub2 /薄膜上的CuO岛组成的新型传感器结构增强了H/ sub2 /S检测特性。在低温(150/spl℃)下,超薄CuO在SnO/sub - 2/薄膜上以点状岛的形式呈现出高灵敏度(S = 7.3 /spl倍/ 10/sup - 3/),对H/sub - 2/S气体检测的响应速度可达14 S。在初始研究中,CuO岛直径大(0.6 mm),厚度大(10 nm),分布广泛(1.2 mm)。本文对催化剂CuO的厚度及其分布进行了系统的研究,并表明化学衍生的CuO纳米颗粒改善了反应和回收率。主要关注痕量(20 ppm) H/sub - 2/S气体检测和传感器响应特性,包括灵敏度和响应速度随CuO催化剂在SnO/sub - 2/表面分布的变化。当CuO纳米颗粒表面分散时,传感器工作温度降至130/spl℃。当CuO催化剂以纳米粒子或点状岛的形式分散在SnO/sub - 2/膜表面时,传感器对H/sub - 2/S气体的响应速度逐渐加快。利用SnO/sub 2/- cuo纳米传感器,在130/spl℃的低温下获得了2/ spl倍/ 10/sup 3/的高灵敏度,在20 ppm的HS气体中获得了16秒的快速响应速度和61秒的恢复时间。CuO纳米颗粒的存在增强了催化活性,它们的空间分布允许从未覆盖的SnO/ sub2 /表面有效去除吸附的氧。从CuO-H/sub - 2/S相互作用中获得的解离氢溢出,并被发现是观察到的快速响应特性的主要原因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved response of H/sub 2/S gas sensors with CuO nanoparticles on SnO/sub 2/ film
In our earlier work enhanced H/sub 2/S detection characteristics were observed in a novel sensor structure consisting of uniformly distributed CuO islands on SnO/sub 2/ films. Ultra-thin CuO in the form of dotted islands on SnO/sub 2/ film exhibited a high sensitivity (S = 7.3 /spl times/ 10/sup 3/) at a low operating temperature (150/spl deg/C), and a fast response speed of 14 s was obtained for H/sub 2/S gas detection In the initial study the CuO islands were large in diameter (0.6 mm) quite thick (10 nm) and were widely dispersed (1.2 mm apart). In the present work a systematic study on the catalyst CuO thickness and its distribution is reported and improved response and recovery are shown with chemically derived CuO nanoparticles. The main focus is towards trace-level (20 ppm) H/sub 2/S gas detection and sensor response characteristics including sensitivity and response speed with varying distribution of CuO catalyst on SnO/sub 2/ surface. The sensor operating temperature at which a maximum response is observed is found to decrease to a lower temperature of 130/spl deg/C with surface dispersed CuO nanoparticles. The response speed of the sensors to H/sub 2/S gas becomes progressively faster when the CuO catalyst is dispersed as nanoparticles or as dotted islands onto the SnO/sub 2/ film surface. With the SnO/sub 2/-CuO-nano sensor, a high sensitivity of 2 /spl times/ 10/sup 3/ at a low operating temperature of 130/spl deg/C is obtained with a fast response speed of 16 seconds for 20 ppm of HS gas and a recovery time of 61 seconds is measured. Enhanced catalytic activity is observed due to the presence of CuO nanoparticles and their spatial distribution allows for, an effective removal of adsorbed oxygen from the uncovered SnO/sub 2/ surface. Dissociated hydrogen available from the CuO-H/sub 2/S interaction spills over and is found to be primarily responsible for the observed fast response characteristics.
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