首页> 中文期刊>安徽地质 >Targeted Sub-Attomole Cancer Biomarker Detection Based on Phase Singularity 2D Nanomaterial-Enhanced Plasmonic Biosensor

Targeted Sub-Attomole Cancer Biomarker Detection Based on Phase Singularity 2D Nanomaterial-Enhanced Plasmonic Biosensor

     

摘要

Detection of small cancer biomarkers with low molecular weight and a low concentration range has always been challenging yet urgent in many clinical applications such as diagnosing early-stage cancer,monitoring treatment and detecting relapse.Here,a highly enhanced plasmonic biosensor that can overcome this challenge is developed using atomically thin two-dimensional phase change nanomaterial.By precisely engineering the configuration with atomically thin materials,the phase singularity has been successfully achieved with a significantly enhanced lateral position shift effect.Based on our knowledge,it is the first experimental demonstration of a lateral position signal change>340μm at a sensing interface from all optical techniques.With this enhanced plasmonic effect,the detection limit has been experimentally demonstrated to be 10^(-15) mol L^(−1) for TNF-α cancer marker,which has been found in various human diseases including inflammatory diseases and different kinds of cancer.The as-reported novel integration of atomically thin Ge_(2)Sb_(2)Te_(5) with plasmonic substrate, which results in a phase singularity and thus a giant lateral position shift, enables the detection of cancer markers with low molecular weight at femtomolar level. These results will definitely hold promising potential in biomedical application and clinical diagnostics.

著录项

  • 来源
    《安徽地质》|2021年第6期|284-294|共11页
  • 作者单位

    Department of Biomedical Engineering The Chinese University of Hong Kong Shatin New Territories Hong Kong People's Republic of China;

    CNRS XLIM Research Institute UMR 7252 University of Limoges 123 Avenue Albert Thomas Limoges France;

    CNRS XLIM Research Institute UMR 7252 University of Limoges 123 Avenue Albert Thomas Limoges France;

    Faculty of Medicine University of Limoges EA3842-CAPTuR GEIST 2 rue du Dr Marcland Limoges France;

    Institute for Integrative Nanosciences IFW Dresden Helmholtzstr.20 Dresden Germany;

    Department of Applied Physics and Applied Mathematics Columbia University New York City NY USA;

    Department of Biomedical Engineering The Chinese University of Hong Kong Shatin New Territories Hong Kong People's Republic of China;

    CNRS XLIM Research Institute UMR 7252 University of Limoges 123 Avenue Albert Thomas Limoges France;

    Department of Applied Physics and Applied Mathematics Columbia University New York City NY USA;

    CNRS XLIM Research Institute UMR 7252 University of Limoges 123 Avenue Albert Thomas Limoges France;

    Department of Biomedical Engineering The Chinese University of Hong Kong Shatin New Territories Hong Kong People's Republic of China;

    CNRS XLIM Research Institute UMR 7252 University of Limoges 123 Avenue Albert Thomas Limoges France;

    Institute for Integrative Nanosciences IFW Dresden Helmholtzstr.20 Dresden Germany;

    Department of Biomedical Engineering The Chinese University of Hong Kong Shatin New Territories Hong Kong People's Republic of China;

    Faculty of Medicine University of Limoges EA3842-CAPTuR GEIST 2 rue du Dr Marcland Limoges France;

    Faculty of Medicine University of Limoges EA3842-CAPTuR GEIST 2 rue du Dr Marcland Limoges France;

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  • 正文语种 eng
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  • 入库时间 2023-07-25 23:48:04

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