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石墨烯增强的可刷新超表面扩展了太赫兹无标记传感的分析物范围并实现了皮克级检测限。

Graphene-Enhanced Refreshable Metasurface Expands Analytes of THz Label-Free Sensing and Achieves Picogram Limit of Detection.

作者信息

Chen Youxin, Wang Qingkang, Wu Kaiyu

机构信息

National Key Laboratory of Advanced Micro and Nano Fabrication Technology, Shanghai Jiao Tong University, Shanghai 200240, China.

Department of Micro/Nano Electronics, School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

ACS Sens. 2024 Dec 27;9(12):6572-6579. doi: 10.1021/acssensors.4c02077. Epub 2024 Nov 25.

Abstract

THz sensing offers unique advantages including strong penetrability, low photon energy, and specific recognition of biomolecules and chemicals. However, current label-free THz sensors all operate below 1 THz, severely limiting applications as many drugs and chemicals vibrate at higher THz frequencies. Moreover, the THz detection of analytes at picogram levels is challenging. Here, a modern graphene-enhanced THz metasurface label-free sensor is presented. Its tunable resonance from ∼1.8 to 2.6 THz matches the fingerprint resonant frequencies of various analytes not currently detectable by label-free THz sensing. Quantitative detection of trace 1,3-DNB (absorbing at ∼2.52 THz) is first achieved with a maximum reflectance sensitivity of ∼10% pmol and a detection limit of 42 pg. The sensor can also be refreshed, minimizing cost and being more environmentally friendly. Our strategy expands application scenarios of label-free THz sensing, enhancing its potential in fields such as the pharmaceutical industry, environmental monitoring, and security.

摘要

太赫兹传感具有独特优势,包括强穿透性、低光子能量以及对生物分子和化学物质的特异性识别。然而,目前的无标记太赫兹传感器均在1太赫兹以下运行,由于许多药物和化学物质在更高的太赫兹频率下振动,这严重限制了其应用。此外,皮克级分析物的太赫兹检测具有挑战性。在此,我们展示了一种现代的石墨烯增强太赫兹超表面无标记传感器。其从约1.8太赫兹到2.6太赫兹的可调谐共振与目前无标记太赫兹传感无法检测到的各种分析物的指纹共振频率相匹配。首次实现了对痕量1,3 -二硝基苯(在约2.52太赫兹处吸收)的定量检测,最大反射率灵敏度约为10%/皮摩尔,检测限为42皮克。该传感器还可刷新,从而将成本降至最低且更环保。我们的策略拓展了无标记太赫兹传感的应用场景,增强了其在制药行业、环境监测和安全等领域的潜力。

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