Illegal drugs sensor: Performance evaluation and identification based on terahertz photonic crystal fiber

太赫兹辐射 光子晶体光纤 光电子学 材料科学 太赫兹超材料 光子晶体 鉴定(生物学) 光学 物理 生物 波长 远红外激光器 激光器 植物
作者
Kayab Khandakar,Jabin Tasnin Upoma,Taheri Hasan,A. H. M. Iftekharul Ferdous,Diponkar Kundu,Mohammad Omar Faruk,Md. Feroz Ali,Md. Shahorin Islam Shaun
出处
期刊:PLOS ONE [Public Library of Science]
卷期号:20 (6): e0327013-e0327013
标识
DOI:10.1371/journal.pone.0327013
摘要

Excessive hormone release, the possibility of sleep disturbances, and a brief and quick improvement in the functioning of many organs, the physiological system, the nerves, etc. are all consequences of the abuse of incentive medications. Illegal narcotics have terrible long-term impacts on human health, including the possibility of death, in addition to their immediate effects. These consequences highlight the need for more obviousness and accuracy in the detection of illicit drugs, as well as for their detection to be done gently, effectively, and consistently. This work introduces an illicit drug sensor based on PCF, with an eye toward these as the primary targets. Three illegal drugs – ketamine, amphetamine, and cocaine – have been simulated for the sensor. Two types of circular air holes in cladding of varying sizes have been developed for a single core PCF. The cladding has three-layer chain and wind turbine-shaped air holes, and a circular air hole in the core region that will be used to field test drug samples, all included to achieve low confinement losses and high sensitivity. A maximum Relative Sensitivity (RS) of 99.92%, 99.12% and 98.83% at ketamine, amphetamine, and cocaine respectively is revealed by the recently established PCF analysis, which was presented out right away. Furthermore, we looked at the Confinement Loss (CL) associated with these illicit drugs, which was around 1.275 × 10 −7 dB/m, 2.653 × 10 −9 dB/m, and 4.106 × 10 −10 dB/m, besides Effective Material Loss (EML) of 0.0042 cm -1 , 0.0044 cm -1 and 0.0045 cm -1 . Refractive index changes in PCF are usually the cause of action for PCF-based biosensors. These modifications have an impact on how light travels within the fiber. Drug molecules interact with light as a result of changes in the optical properties of the core that occur during light propagation through it.
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