Frequency selective fingerprint sensor: the Terahertz unity platform for broadband chiral enantiomers multiplexed signals and narrowband molecular AIT enhancement

IF 15.7 Q1 OPTICS PhotoniX Pub Date : 2023-09-19 DOI:10.1186/s43074-023-00108-1
Jiaming Lv, Shengyuan Shen, Lin Chen, Yiming Zhu, Songlin Zhuang
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引用次数: 6

Abstract

Abstract Chiral enantiomers have different pharmacological and pharmacokinetic characteristics. It is important to strictly detect chiral component for avoiding being harmful to the human body due to side effects. Terahertz (THz) trace fingerprint detection is essential because the molecular vibrations of various biological substances such as chiral enantiomers are located in THz range. Recent reported enhanced trace fingerprint technologies have some drawbacks. For instance, multiplexing technology suffered from narrow operation range and limitation by frequency resolution of commercial THz time domain spectroscopy; Absorption induced transparency (AIT) identification for narrowband molecular oscillations suffered from random resonance frequency drift due to fabrication error. In this paper, we proposed frequency-selective fingerprint sensor (FSFS), which can experimentally achieve enhanced trace fingerprint detection by both broadband multiplexing technology and robust AIT identification. Such FSFS is based on polarization independent reconfiguration metasurfaces array. Broadband absorption lines of trace-amount chiral carnitine were boosted with absorption enhancement factors of about 7.3 times based on frequency-selective multiplexing at 0.95–2.0 THz. Enhanced trace narrowband α-lactose fingerprint sensing can be observed at several array structures with absorption enhancement factors of about 7 times based on AIT, exhibiting good robustness. The flexibility and versatility of proposed FSFS has potential applications for boosting trace chiral enantiomer detection as well as diversity of molecular fingerprints identification by both multiplexing and AIT.

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频率选择性指纹传感器:宽带手性对映体多路信号和窄带分子AIT增强的太赫兹统一平台
手性对映体具有不同的药理学和药代动力学特征。为了避免手性成分对人体产生副作用,必须严格检测手性成分。太赫兹(THz)痕量指纹检测是必不可少的,因为各种生物物质(如手性对映体)的分子振动都位于太赫兹范围内。最近报道的增强型痕迹指纹技术有一些缺点。例如,多路复用技术存在工作范围窄和商用太赫兹时域光谱频率分辨率的限制;吸收诱导透明(AIT)识别窄带分子振荡由于制造误差引起的随机共振频率漂移。本文提出了频率选择性指纹传感器(FSFS),该传感器通过宽带复用技术和鲁棒的AIT识别技术,在实验上实现了增强的痕迹指纹检测。这种FSFS是基于偏振无关重构元表面阵列的。在0.95 ~ 2.0 THz波段,采用频率选择复用技术对痕量手性肉碱的宽带吸收谱线进行了约7.3倍的吸收增强。基于AIT的痕量窄带α-乳糖指纹传感在多种阵列结构上均有增强,吸收增强因子约为7倍,具有较好的鲁棒性。该方法具有一定的灵活性和多功能性,可用于提高痕量手性对映体的检测,以及通过多路复用和AIT进行分子指纹识别的多样性。
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来源期刊
CiteScore
25.70
自引率
0.00%
发文量
0
审稿时长
13 weeks
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