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A silicon membrane-silver nanoparticles SERS chip for trace molecules detection

机译:用于痕量分子检测的硅膜 - 银纳米粒子SERS芯片

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摘要

Detecting the traces of molecules in the surrounding environment are the technical challenges associated with contaminant control during space apparatus assembly stages, space research, food production, medicine, environmental control, military, etc. However, the detection of the traces of the molecules of contaminants in the environment is a challenge because the number of target molecules can be as low as part-per-billion (ppb) in the air. Moreover, the Organic Volatile Compounds in the air may have very low adsorption to the sensing element. This work presents a novel Surface Enhanced Raman spectroscopy (SERS) platform for molecular sensors based on the hybrid nanoplasmonic silicon membrane integrated with gas micropump. The proposed solution of the problem is to increase the probability of interaction of analyzes with SERS substrate plasmonic structures by the pumping gas or liquid with contaminants through the silicon membrane decorated with silicon flower like nanostructures ("hot spots"). The main objective of theoretical computational design of the sensor is to determine the optimal conditions for trace molecules flow through and interaction with SERS substrate ("hot spots") to increase the Raman scattering. The computer simulation of gas flow with the purpose to optimize the sensor chip structure was made using SolidWorks software. The sensor chip structure was designed, simulated and manufactured using 3D printing. The measured results show that the proposed sensing platform is of high sensitivity. The SERS spectra of the anizole vapors (4,6 x 10(-9) M) and crystal violet solution (10 x 10(-9) M) were recorded using Raman spectrometer (NTEGRA Spectra, NT-MDT Inc.) equipped with 532 nm laser. It was found that the developed SERS platform allows to achieve the nanomolar sensitivity in gas detection and reliably identify the type of analyze based on SERS spectral fingerprint.
机译:检测周围环境中的分子痕迹是与空间设备组装阶段,空间研究,食品生产,医学,环境控制,军事等的污染物控制相关的技术挑战。然而,检测污染物分子的痕迹在环境中是一个挑战,因为目标分子的数量可以在空气中尽可能低的部分(PPB)。此外,空气中的有机挥发性化合物可能对传感元件非常低吸附。该工作提出了一种新型表面增强拉曼光谱(SERS)平台,用于基于与气体微泵集成的杂化纳米型硅膜的分子传感器。该问题的提出解决方案是通过泵送气体或液体通过硅膜(“热点”)的硅膜(“热点”)的硅膜增加,通过泵送气体或液体通过泵送气体或液体来增加分析与污染物的分析的相互作用的概率。传感器理论计算设计的主要目的是确定痕量分子流过的最佳条件,并与SERS基板(“热点”)相互作用以增加拉曼散射。使用SolidWorks软件制造了用于优化传感器芯片结构的气流的计算机模拟。使用3D打印设计,模拟和制造传感器芯片结构。测量结果表明,所提出的传感平台具有高灵敏度。使用拉曼光谱仪(NTEGRA Spectra,NT-MDT Inc.)记录苯唑蒸气的SERS光谱(4,6×10(-9)m)和晶体紫溶液(10×10(-9)m) 532 nm激光。结果发现,发达的SERS平台允许在气体检测中实现纳摩尔敏感性,并可可靠地识别基于SERS光谱指纹的分析类型。

著录项

  • 来源
    《Microelectronic Engineering》 |2020年第3期|111282.1-111282.6|共6页
  • 作者单位

    Kaunas Univ Technol Res Ctr Microsyst & Nanotechnol Studentu 65 LT-51369 Kaunas Lithuania;

    Kaunas Univ Technol Food Inst Radvilenu Str 19 LT-50254 Kaunas Lithuania;

    Kaunas Univ Technol Food Inst Radvilenu Str 19 LT-50254 Kaunas Lithuania;

    Kaunas Univ Technol Res Ctr Microsyst & Nanotechnol Studentu 65 LT-51369 Kaunas Lithuania|Kaunas Univ Technol Food Inst Radvilenu Str 19 LT-50254 Kaunas Lithuania;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Raman; Spectroscopy; SEAS; Gas sensing;

    机译:拉曼;光谱;海;气体传感;

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