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Bi-functional mechanism of H2S detection using CuO-SnO2 nanowiresf

机译:CuO-SnO2纳米线检测H2S的双功能机理

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In this study, a bi-functional mechanism is proposed and validated, which may be used to explain all of the reported experimental observations and to predict new sensing control parameters. Fast response and recovery in H2S sensing was then realized by using bi-functional SnO2 nanowires which have been radially modulated with CuO. Firstly, Cu metal nanoparticles were synthesized by applying y-ray radiolysis. The Cu nanoparticles (attached to the surface of the SnO2 nanowires) were oxidized to the CuO phase by a thermal treatment at 500 °C in air. The H2S sensing characteristics of the CuOfunctionalized SnO2 nanowires were compared with those of bare SnO2 nanowires. The results demonstrated that γ-ray radiolysis is an effective means of functionalizing the surface of oxide nanowires with CuO nanoparticles, and CuO functionalization greatly enhanced the ability of the SnO2 nanowires to detect H2S in terms of the response and recovery times. In addition, two control parameters, a 0.5 CuO to SnO2 surface ratio and a sensing temperature range of 80-220 °C, are predicted. The radially modulated nanostructures achieve two functions: (1) the formation and breakaway of p-n (CuO-SnO2) junctions, and (2) the formation and dissolution of CuS using CuO-SnO2 solid solutions.
机译:在这项研究中,提出并验证了一种双功能机制,可用于解释所有已报道的实验观察结果并预测新的传感控制参数。然后,通过使用已被CuO径向调制的双功能SnO2纳米线,实现了H2S传感的快速响应和恢复。首先,通过γ射线分解合成了铜金属纳米粒子。通过在空气中在500°C下进行热处理,将Cu纳米颗粒(附着在SnO2纳米线的表面上)氧化成CuO相。比较了CuO官能化的SnO2纳米线与裸露的SnO2纳米线的硫化氢感测特性。结果表明,γ射线辐解是用CuO纳米粒子功能化氧化物纳米线表面的有效手段,CuO功能化极大地增强了SnO2纳米线检测H2S的响应和恢复时间的能力。此外,还预测了两个控制参数,即0.5 CuO与SnO2的表面比率和80-220°C的感测温度范围。径向调制的纳米结构具有两个功能:(1)p-n(CuO-SnO2)结的形成和分离,以及(2)使用CuO-SnO2固溶体形成和溶解CuS。

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