Recum Patrick, Hirsch Thomas
University of Regensburg Germany
Nanoscale Adv. 2023 Oct 23;6(1):11-31. doi: 10.1039/d3na00423f. eCollection 2023 Dec 19.
Gas sensors allow the monitoring of the chemical environment of humans, which is often crucial for their wellbeing or even survival. Miniaturization, reversibility, and selectivity are some of the key challenges for serial use of chemical sensors. This tutorial review describes critical aspects when using nanomaterials as sensing substrates for the application in chemiresistive gas sensors. Graphene has been shown to be a promising candidate, as it allows gas sensors to be operated at room temperature, possibly saving large amounts of energy. In this review, an overview is given on the general mechanisms for gas-sensitive semiconducting materials and the implications of doping and functionalization on the sensing parameters of chemiresistive devices. It shows in detail how different challenges, like sensitivity, response time, reversibility and selectivity have been approached by material development and operation modes. In addition, perspectives from the area of data analysis and intelligent algorithms are presented, which can further enhance these sensors' usability in the field.
气体传感器能够监测人类的化学环境,这对人类的健康甚至生存往往至关重要。小型化、可逆性和选择性是化学传感器连续使用面临的一些关键挑战。本教程综述描述了将纳米材料用作化学电阻式气体传感器应用的传感基板时的关键方面。石墨烯已被证明是一种很有前途的候选材料,因为它能使气体传感器在室温下工作,可能节省大量能源。在这篇综述中,概述了气敏半导体材料的一般机制以及掺杂和功能化对化学电阻式器件传感参数的影响。详细展示了如何通过材料开发和操作模式来应对不同的挑战,如灵敏度、响应时间、可逆性和选择性。此外,还介绍了数据分析和智能算法领域的观点,这些观点可以进一步提高这些传感器在该领域的实用性。