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Temperature-Modulated Selective Detection of Part-per-Trillion NO<sub>2</sub> Using Platinum Nanocluster Sensitized 3D Metal Oxide Nanotube Arrays.

Zhilong SongWenying TangZhesi ChenZhu'an WanChak Lam Jonathan ChanChen WangWenhao YeZhi-Yong Fan
Published in: Small (Weinheim an der Bergstrasse, Germany) (2022)
Semiconductor chemiresistive gas sensors play critical roles in a smart and sustainable city where a safe and healthy environment is the foundation. However, the poor limits of detection and selectivity are the two bottleneck issues limiting their broad applications. Herein, a unique sensor design with a 3D tin oxide (SnO<sub>2</sub> ) nanotube array as the sensing layer and platinum (Pt) nanocluster decoration as the catalytic layer, is demonstrated. The Pt/SnO<sub>2</sub> sensor significantly enhances the sensitivity and selectivity of NO<sub>2</sub> detection by strengthening the adsorption energy and lowering the activation energy toward NO<sub>2</sub> . It not only leads to ultrahigh sensitivity to NO<sub>2</sub> with a record limit of detection of 107 parts per trillion, but also enables selective NO<sub>2</sub> sensing while suppressing the responses to interfering gases. Furthermore, a wireless sensor system integrated with sensors, a microcontroller, and a Bluetooth unit is developed for the practical indoor and on-road NO<sub>2</sub> detection applications. The rational design of the sensors and their successful demonstration pave the way for future real-time gas monitoring in smart home and smart city applications.
Keyphrases
  • loop mediated isothermal amplification
  • real time pcr
  • label free
  • room temperature
  • healthcare
  • low cost
  • signaling pathway
  • high throughput
  • heavy metals
  • drinking water
  • reduced graphene oxide
  • carbon dioxide
  • health risk