Key Laboratory of Energy Materials Chemistry, Ministry of Education, Key Laboratory of Advanced Functional Materials, Autonomous Region, Institute of Applied Chemistry, Xinjiang University, Urumqi 830046, China.
Sensors (Basel). 2018 Aug 31;18(9):2882. doi: 10.3390/s18092882.
Novel Ni-doped wurtzite ZnS nanospheres decorated with Au nanoparticles (Au NPs⁻ZnS NSs) have been successfully fabricated using a simple method involving vacuum evaporation followed by an annealing process. This transition metal-doped gas sensor had high responsivity, extremely fast response and recovery time, and excellent selectivity to formaldehyde at room temperature. The response and recovery time are only 29 s and 2 s, respectively. Since ZnS is transformed into ZnO at a high temperature, superior room temperature-sensing performance can improve the stability and service life of the sensor. The improvement in sensing performance could be attributed to the reduced charge-transfer distance resulting from the creation of a local charge reservoir layer, and the catalytic and spillover effect of Au nanoparticles. The rough and porous spherical structure can also facilitate the detection and diffusion of gases. The as-prepared Au NPs⁻ZnS NSs are considered to be an extremely promising candidate material for gas sensors, and are expected to have other potential applications in the future.
采用真空蒸发结合退火处理的简单方法,成功制备了新型掺镍的纤锌矿结构 ZnS 纳米球表面修饰金纳米颗粒(Au NPs⁻ZnS NSs)。该过渡金属掺杂气敏传感器对甲醛在室温下表现出高灵敏度、极快的响应和恢复时间以及优异的选择性。其响应和恢复时间分别仅为 29 s 和 2 s。由于 ZnS 在高温下会转化为 ZnO,因此优异的室温传感性能可以提高传感器的稳定性和使用寿命。传感性能的提高可以归因于局部电荷储存层的形成导致的电荷转移距离的减小,以及金纳米颗粒的催化和溢出效应。粗糙多孔的球形结构也有利于气体的检测和扩散。所制备的 Au NPs⁻ZnS NSs 被认为是一种极具前景的气敏材料候选,有望在未来有其他潜在应用。