...
首页> 外文期刊>ACS applied materials & interfaces >Near Room Temperature, Fast-Response, and Highly Sensitive Triethylamine Sensor Assembled with Au-Loaded ZnO/SnO2 Core Shell Nanorods on Flat Alumina Substrates
【24h】

Near Room Temperature, Fast-Response, and Highly Sensitive Triethylamine Sensor Assembled with Au-Loaded ZnO/SnO2 Core Shell Nanorods on Flat Alumina Substrates

机译:接近室温,快速响应和高灵敏度的三乙胺传感器,在平坦的氧化铝基板上与Au负载的ZnO / SnO2核壳纳米棒组装在一起

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Chemiresistive gas sensors with low power consumption, fast response, and reliable fabrication process for a specific target gas have been now created for many applications. They require both sensitive nanomaterials and an efficient substrate chip for heating and electrical addressing. Herein, a near room working temperature and fast response triethylamine (TEA) gas sensor has been fabricated successfully by designing gold (Au)-loaded ZnO/SnO2 core shell nanorods. ZnO nanorods grew directly on Al2O3 flat electrodes with a cost-effective hydrothermal process. By employing pulsed laser deposition (PLD) and DC-sputtering methods, the construction of Au nanopartide-loaded ZnO/SnO2 core/shell nanorod heterostructure is highly controllable and reproducible. In comparison with pristine ZnO, SnO2, and Au-loaded ZnO, SnO2 sensors, Au-ZnO/SnO2 nanorod sensors exhibit a remarkably high and fast response to TEA gas at working temperatures as low as 40 degrees C. The enhanced sensing property of the Au-ZnO/SnO2 sensor is also discussed with the semiconductor depletion layer model introduced by Au-SnO2 Schottky contact and ZnO/SnO2 N N heterojunction.
机译:具有低功耗,快速响应以及针对特定目标气体的可靠制造工艺的化学气体传感器现已为许多应用创建。他们需要敏感的纳米材料和高效的基板芯片来进行加热和电寻址。在此,通过设计负载金(Au)的ZnO / SnO2核壳纳米棒,成功地制造了接近室温的工作温度和快速响应的三乙胺(TEA)气体传感器。 ZnO纳米棒通过具有成本效益的水热工艺直接在Al2O3扁平电极上生长。通过采用脉冲激光沉积(PLD)和直流溅射方法,负载金纳米粒子的ZnO / SnO2核/壳纳米棒异质结构的构建是高度可控和可重复的。与原始ZnO,SnO2和载有Au的ZnO,SnO2传感器相比,Au-ZnO / SnO2纳米棒传感器在低至40摄氏度的工作温度下对TEA气体表现出显着高且快速的响应。讨论了Au-SnO2肖特基接触和ZnO / SnO2 NN异质结引入的半导体耗尽层模型,讨论了Au-ZnO / SnO2传感器。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号