School of Optical and Electronic Information , Huazhong University of Science and Technology , Wuhan 430074 , P. R. China.
Key Lab of Materials Physics, Anhui Key Lab of Nanomaterials and Nanotechnology, Institute of Solid State Physics , Chinese Academy of Science , Hefei 230031 , P. R. China.
ACS Appl Mater Interfaces. 2019 Feb 27;11(8):8164-8174. doi: 10.1021/acsami.8b17251. Epub 2019 Feb 13.
CuO monolayer colloidal particle films with controllable thickness and homogeneous microstructure were prepared by self-assembly and subsequent calcination based on CuO colloidal particles. Large-scale CuO monolayer colloidal particle films have the particle size of 300-500 nm, and CuO colloidal particles are hollow. It was found that such a structure exhibits excellent room-temperature HS-gas-sensing properties. It not only has high sensing response and excellent selectivity, but also has a low limit of detection of 100 ppb. The sensors exhibit different sensitive characteristics at low and high concentrations of HS. At low concentration (100-500 ppb), the sensor can be recovered with the increase of gas response, although it takes a longer recovery time at room temperature. At medium concentration (1-100 ppm), although the gas response still increases, the sensor is irreversible at room temperature. When the concentration continues to increase (>100 ppm), the sensor is irreversible at room temperature, and the gas response first increases and then decreases. Two reaction mechanisms are proposed to explain the above-mentioned sensing behavior. More importantly, quasi in situ X-ray photoelectron spectra confirm the existence of CuS. The CuO sensor with room-temperature response and superselectivity will find potential applications in industry, environment, or intelligent electronics.
采用自组装法,通过后续煅烧制备了具有可控厚度和均匀微观结构的 CuO 单层胶体颗粒薄膜。所得的大规模 CuO 单层胶体颗粒薄膜的颗粒尺寸为 300-500nm,且 CuO 胶体颗粒为中空结构。研究发现,这种结构表现出优异的室温 HS 气敏性能,不仅具有较高的传感响应和出色的选择性,而且检测限低至 100ppb。传感器在 HS 低浓度和高浓度下表现出不同的敏感特性。在低浓度(100-500ppb)下,随着气体响应的增加,传感器可以恢复,尽管在室温下需要更长的恢复时间。在中等浓度(1-100ppm)下,尽管气体响应仍在增加,但传感器在室温下是不可逆的。当浓度继续增加(>100ppm)时,传感器在室温下是不可逆的,气体响应先增加后减小。提出了两种反应机制来解释上述传感行为。更重要的是,准原位 X 射线光电子能谱证实了 CuS 的存在。具有室温响应和超选择性的 CuO 传感器将在工业、环境或智能电子领域找到潜在的应用。