具有增强硫化氢传感性能的分层共掺杂NiO微球的单锅溶剂热合成

Wenjing Du , Jinbo Zhao , Fenglong Wang , Huan Yang , Ling Chen , Xingyu Yao , Lili Wu , Jiurong Liu
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引用次数: 1

摘要

在这项研究中,我们首次报道了用简单的溶剂热法合成由二维纳米片组装的共掺杂NiO微球。系统地考察了制备样品的H2S气敏性能。结果表明,与纯NiO传感器相比,Co/Ni摩尔比为1% (1% Co - NiO)的Co - NiO传感器在200℃下对20×10−6 H2S的响应高(12.9),响应速度快(110 s)。具有良好的选择性、重复性和稳定性。传感机理表明,优越的气敏性能可归因于两个因素。(1)层次化微球结构具有163.1 m2 g−1的超高比表面积,为H2S气体吸附提供了充足的活性位点,多孔结构和层间间隙加速了H2S气体的扩散,提高了传感器的灵敏度和响应速度。(2)共掺杂使纳米粒子粒径减小(约4 nm),吸附的氧离子数量增加,提高了灵敏度和选择性。因此,本研究为合成具有增强H2S气敏性能的分层Co-NiO微球提供了一种简便的方法。
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One-pot solvothermal synthesis of hierarchical Co-doped NiO microspheres with enhanced hydrogen sulfide sensing performances

In this study we report, for the first time, the synthesis of Co-doped NiO microspheres assembled by two-dimension nanosheets using a facile solvothermal method. The H2S gas-sensing performance of the as-prepared samples was systematically investigated. The result demonstrates that the Co–NiO sensor with Co/Ni molar ratio of 1% (1% Co–NiO) exhibits high response (12.9) and rapid response speed (110 s) to 20×10−6 H2S at 200 °C in comparison with the pure NiO sensor. Moreover, excellent selectivity, repeatability, and stability were achieved. The sensing mechanism illustrates that the superior gas-sensing properties can be attributed to two factors. (1) The hierarchical microspherical construction with an ultrahigh specific surface area of 163.1 m2 g1 provides adequate active sites for H2S gas adsorption, porous structures, and an interlayer gap that accelerates the diffusion of H2S gas, resulting in improved sensitivity and response speed of the sensor. (2) Co-doping results in a decrease in the particle sizes (ca. 4 nm) and increase in the number of adsorbed ionized oxygen species, which improves sensitivity and selectivity. Therefore, this study provides a facile approach for the synthesis of hierarchical Co–NiO microspheres with enhanced H2S gas-sensing performance.

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