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用于化学和生物传感应用的石英晶体微天平综述。

A Review of Quartz Crystal Microbalance for Chemical and Biological Sensing Applications.

作者信息

Alanazi Nadyah, Almutairi Maram, Alodhayb Abdullah N

机构信息

Department of Physics and Astronomy, College of Science, King Saud University, Riyadh, 11451 Saudi Arabia.

King Abdullah Institute for Nanotechnology, King Saud University, Riyadh, 11451 Saudi Arabia.

出版信息

Sens Imaging. 2023;24(1):10. doi: 10.1007/s11220-023-00413-w. Epub 2023 Mar 4.

Abstract

Humans are fundamentally interested in monitoring and understanding interactions that occur in and around our bodies. Biological interactions within the body determine our physical condition and can be used to improve medical treatments and develop new drugs. Daily life involves contact with numerous chemicals, ranging from household elements, naturally occurring scents from common plants and animals, and industrial agents. Many chemicals cause adverse health and environmental effects and require regulation to prevent pollution. Chemical detection is critically important for food and environmental quality control efforts, medical diagnostics, and detection of explosives. Thus, sensitive devices are needed for detecting and discriminating chemical and biological samples. Compared to other sensing devices, the Quartz Crystal Microbalance (QCM) is well-established and has been considered and sufficiently sensitive for detecting molecules, chemicals, polymers, and biological assemblies. Due to its simplicity and low cost, the QCM sensor has potential applications in analytical chemistry, surface chemistry, biochemistry, environmental science, and other disciplines. QCM detection measures resonate frequency changes generated by the quartz crystal sensor when covered with a thin film or liquid. The quartz crystal is sandwiched between two metal (typically gold) electrodes. Functionalizing the electrode's surface further enhances frequency change detection through to interactions between the sensor and the targeted material. These sensors are sensitive to high frequencies and can recognize ultrasmall masses. This review will cover advancements in QCM sensor technologies, highlighting in-sensor and real-time analysis. QCM-based sensor function is dictated by the coating material. We present various high-sensitivity coating techniques that use this novel sensor design. Then, we briefly review available measurement parameters and technological interventions that will inform future QCM research. Lastly, we examine QCM's theory and application to enhance our understanding of relevant electrical components and concepts.

摘要

人类从根本上就对监测和理解发生在我们身体内部及周围的相互作用感兴趣。体内的生物相互作用决定了我们的身体状况,并可用于改善医疗治疗和研发新药。日常生活涉及与众多化学物质的接触,这些化学物质包括家用元素、常见动植物产生的天然气味以及工业制剂。许多化学物质会对健康和环境造成不良影响,因此需要进行监管以防止污染。化学检测对于食品和环境质量控制、医学诊断以及爆炸物检测至关重要。因此,需要灵敏的设备来检测和区分化学和生物样本。与其他传感设备相比,石英晶体微天平(QCM)已得到广泛应用,并且被认为对检测分子、化学物质、聚合物和生物组装体具有足够的灵敏度。由于其简单性和低成本,QCM传感器在分析化学、表面化学、生物化学、环境科学及其他学科中具有潜在应用。QCM检测测量的是当石英晶体传感器被薄膜或液体覆盖时产生的共振频率变化。石英晶体夹在两个金属(通常是金)电极之间。通过使电极表面功能化,可进一步增强因传感器与目标材料之间的相互作用而产生的频率变化检测。这些传感器对高频敏感,能够识别超小质量。本综述将涵盖QCM传感器技术的进展,重点介绍传感器内分析和实时分析。基于QCM的传感器功能由涂层材料决定。我们介绍了各种使用这种新型传感器设计的高灵敏度涂层技术。然后,我们简要回顾了可用的测量参数和技术干预措施,这些将为未来的QCM研究提供参考。最后,我们研究QCM的理论和应用,以加深我们对相关电气组件和概念的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/35e2/9985094/8e7203d6fdc4/11220_2023_413_Fig1_HTML.jpg

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