基于等离子体太赫兹-金属表面生物传感器的败血症炎症因子快速、高灵敏度检测技术

IF 1.3 4区 物理与天体物理 Q3 PHYSICS, FLUIDS & PLASMAS IEEE Transactions on Plasma Science Pub Date : 2024-04-26 DOI:10.1109/TPS.2024.3370369
Bin Zhang;Ride Wang;Xiaohui Du
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引用次数: 0

摘要

败血症是一种高度动态、错综复杂的病症,有可能迅速发展为危重器官功能障碍和死亡。及时发现和处理败血症至关重要,因为它有可能显著降低死亡率,提高整体临床效果。然而,目前的临床检测技术由于受到诸多因素的限制,很难满足人们的要求,因此迫切需要一种快速、高灵敏度的检测方法。表面等离子体偶极子共振原理允许电偶极子和环偶极子之间产生强耦合,从而产生极高的局部电场增强,增强光物质之间的相互作用,从而产生高质量因子(Q$Q$)高达 19.36 的本征峰值,在此基础上,我们提出了一种等离子体太赫兹(THz)元表面生物传感器。为了证明其卓越的生物传感性能,我们在二维微阵列格式中集成了抗体功能化元表面,用于炎症因子降钙素原[降钙素原(PCT)]、白细胞介素-10(IL-10)溶液的流入和实时结合检测,检测限为 100 ng/mL。综上所述,所设计的太赫兹-金属表面生物传感器不仅具有检测限低、集成度高、自动化程度高等优点,而且在生物医学领域具有广阔的应用前景,为众多疾病患者带来了希望。
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Rapid and Highly Sensitive Detection of Sepsis Inflammatory Factors Based on a Plasmonic Terahertz-Metasurface Biosensor
Sepsis is a highly dynamic and intricate medical condition that has the potential to swiftly advance toward critical organ dysfunction and fatality. Timely identification and management of sepsis is of utmost importance, as it has the potential to significantly decrease mortality rates and enhance overall clinical results. However, current clinical detection techniques are difficult to fulfill someone’s requirements due to the limitations of many factors, so a rapid and highly sensitive detection method is urgently needed. Here, we propose a plasma terahertz (THz) metasurface biosensor based on the principle of surface plasmon resonance, which allows strong coupling between electric and toroidal dipoles to produce extremely high local electric field enhancement that enhances light–matter interactions, resulting in intrinsic peaks with high-quality factor ( $Q$ ) up to 19.36. To demonstrate its superior biosensing performance, we integrated antibody-functionalized metasurfaces in a 2-D microarray format for influx and real-time binding assay of inflammatory factors calcitoninogen [procalcitonin (PCT)], interleukin-10 (IL-10) solutions, with a detection limit of 100 ng/mL. In summary, the designed THz-metasurface biosensor not only possesses advantages including low detection limit, high integration, and high automation, but also has a bright application prospect in the biomedical field, bringing hope to many patients suffering from illness.
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来源期刊
IEEE Transactions on Plasma Science
IEEE Transactions on Plasma Science 物理-物理:流体与等离子体
CiteScore
3.00
自引率
20.00%
发文量
538
审稿时长
3.8 months
期刊介绍: The scope covers all aspects of the theory and application of plasma science. It includes the following areas: magnetohydrodynamics; thermionics and plasma diodes; basic plasma phenomena; gaseous electronics; microwave/plasma interaction; electron, ion, and plasma sources; space plasmas; intense electron and ion beams; laser-plasma interactions; plasma diagnostics; plasma chemistry and processing; solid-state plasmas; plasma heating; plasma for controlled fusion research; high energy density plasmas; industrial/commercial applications of plasma physics; plasma waves and instabilities; and high power microwave and submillimeter wave generation.
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