Shinde Pratik V, Rout Chandra Sekhar
Centre for Nano and Material Sciences, Jain University Jain Global Campus, Jakkasandra, Ramanagaram Bangalore 562112 India
Nanoscale Adv. 2021 Jan 23;3(6):1551-1568. doi: 10.1039/d0na00826e. eCollection 2021 Mar 23.
Gas sensors work on the principle of transforming the gas adsorption effects on the surface of the active material into a detectable signal in terms of its changed electrical, optical, thermal, mechanical, magnetic (magnetization and spin), and piezoelectric properties. In magnetic gas sensors, the change in the magnetic properties of the active materials is measured by one of the approaches such as Hall effect, magnetization, spin orientation, ferromagnetic resonance, magneto-optical Kerr effect, and magneto-static wave oscillation effect. The disadvantages of different types of gas sensors include their chemical selectivity and sensitivity to humidity and high-temperature operation. For example, in the case of chemiresistive-type gas sensors, the change in the sensor resistance can drastically vary in the real environment due to the presence of other gas species and the overall electrical effect is quite complex due to simultaneous surface reactions. Further, it is not easy to make stable contacts for powdered samples for the conventional electrical property-based gas sensors. Fire hazard is another issue for the electrical property-based hydrogen gas sensors due to their flammable nature at higher operating temperature. In this regard, to solve these issues, magnetic gas sensor concepts have emerged, in which the magnetic properties of the materials get modified when exposed to gas molecules. In this review article, the working principles, fundamentals, recent developments, and future perspectives in magnetic gas sensors are reviewed. Finally, the prospects and opportunities in these exciting fields are also commented upon based on their current progress.
气体传感器的工作原理是将活性材料表面的气体吸附效应转化为可检测信号,该信号表现为其电学、光学、热学、力学、磁学(磁化和自旋)以及压电特性的变化。在磁性气体传感器中,活性材料磁性特性的变化通过霍尔效应、磁化、自旋取向、铁磁共振、磁光克尔效应和静磁波振荡效应等方法之一进行测量。不同类型气体传感器的缺点包括其化学选择性以及对湿度和高温操作的敏感性。例如,对于化学电阻型气体传感器,由于存在其他气体种类,传感器电阻的变化在实际环境中可能会大幅波动,并且由于同时发生的表面反应,整体电学效应相当复杂。此外,对于基于传统电学特性的气体传感器,要为粉末状样品制作稳定的接触并不容易。基于电学特性的氢气传感器在较高工作温度下具有易燃性,火灾隐患是另一个问题。在这方面,为了解决这些问题,磁性气体传感器的概念应运而生,其中材料在暴露于气体分子时其磁性会发生改变。在这篇综述文章中,对磁性气体传感器的工作原理、基本原理、最新进展和未来前景进行了综述。最后,基于它们目前的进展,对这些令人兴奋的领域中的前景和机遇也进行了评论。