Zhu Linghui, Wang Ying, Zhang Dezhong, Li Chao, Sun Dongming, Wen Shanpeng, Chen Yu, Ruan Shengping
Institute of Semiconductors, Chinese Academy of Sciences , Beijing 100083, P. R. China.
ACS Appl Mater Interfaces. 2015 Sep 23;7(37):20793-800. doi: 10.1021/acsami.5b05845. Epub 2015 Sep 8.
Metal sulfide Zn1-xCdxS nanowires (NWs) covering the entire compositional range prepared by one step solvothermal method were used to fabricate gas sensors. This is the first time for ternary metal sulfide nanostructures to be used in the field of gas sensing. Surprisingly, the sensors based on Zn1-xCdxS nanowires were found to exhibit enhanced response to ethanol compared to those of binary CdS and ZnS NWs. Especially for the sensor based on the Zn1-xCdxS (x = 0.4) NWs, a large sensor response (s = 12.8) and a quick rise time (2 s) and recovery time (1 s) were observed at 206 °C toward 20 ppm ethanol, showing preferred selectivity. A dynamic equilibrium mechanism of oxygen molecules absorption process and carrier intensity change in the NWs was used to explain the higher response of Zn1-xCdxS. The reason for the much quicker response and recovery speed of the Zn1-xCdxS NWs than those of the binary ZnS NWs was also discussed. These results demonstrated that the growth of metal sulfide Zn1-xCdxS nanostructures can be utilized to develop gas sensors with high performance.
采用一步溶剂热法制备的覆盖整个成分范围的金属硫化物Zn1-xCdxS纳米线(NWs)用于制造气体传感器。这是三元金属硫化物纳米结构首次应用于气体传感领域。令人惊讶的是,与二元CdS和ZnS NWs相比,基于Zn1-xCdxS纳米线的传感器对乙醇表现出增强的响应。特别是对于基于Zn1-xCdxS(x = 0.4)NWs的传感器,在206℃下对20 ppm乙醇观察到较大的传感器响应(s = 12.8)以及快速的上升时间(2 s)和恢复时间(1 s),显示出良好的选择性。利用氧分子吸收过程的动态平衡机制和NWs中载流子强度变化来解释Zn1-xCdxS的更高响应。还讨论了Zn1-xCdxS NWs比二元ZnS NWs响应和恢复速度快得多的原因。这些结果表明,金属硫化物Zn1-xCdxS纳米结构的生长可用于开发高性能气体传感器。