Mihai Laura, Mihalcea Razvan, Tomescu Roxana, Paun Costel, Cristea Dana
National Institute of Laser, Plasma and Radiation Physics-INFLPR/CETAL, 077125 Ilfov, Romania.
National Institute for Research and Development in Microtechnologie-IMT Bucharest, 077190 Ilfov, Romania.
Nanomaterials (Basel). 2022 Mar 18;12(6):1009. doi: 10.3390/nano12061009.
In this paper, we propose a highly selective and efficient gas detection system based on a narrow-band IR metasurface emitter integrated with a resistive heater. In order to develop the sensor for the detection of specific gases, both the microheater and metasurface structures have been optimized in terms of geometry and materials. Devices with different metamaterial structures and geometries for the heater have been tested. Our prototype showed that the modification of the spectral response of metasurface-based structures is easily achieved by adapting the geometrical parameters of the plasmonic micro-/nanostructures in the metasurface. The advantage of this system is the on-chip integration of a thermal source with broad IR radiation with the metasurface structure, obtaining a compact selective radiation source. From the experimental data, narrow emission peaks (FWHM as low as 0.15 μm), corresponding to the CO, CH, and CO absorption bands, with a radiant power of a few mW were obtained. It has been shown that, by changing the bias voltage, a shift of a few tens of nm around the central emission wavelength can be obtained, allowing fine optimization for gas detection applications.
在本文中,我们提出了一种基于集成有电阻加热器的窄带红外超表面发射器的高选择性高效气体检测系统。为了开发用于检测特定气体的传感器,微加热器和超表面结构在几何形状和材料方面均已得到优化。已对具有不同超材料结构和加热器几何形状的器件进行了测试。我们的原型表明,通过调整超表面中等离激元微/纳米结构的几何参数,可轻松实现基于超表面结构的光谱响应的修改。该系统的优势在于将具有宽红外辐射的热光源与超表面结构进行片上集成,从而获得紧凑的选择性辐射源。从实验数据中,获得了对应于一氧化碳、甲烷和一氧化碳吸收带的窄发射峰(半高宽低至0.15μm),辐射功率为几毫瓦。结果表明,通过改变偏置电压,可在中心发射波长周围获得几十纳米的偏移,从而实现对气体检测应用的精细优化。