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Electrical detection of bio-molecular interactions using nanometer-scale gap electrode structures.

机译:使用纳米级间隙电极结构进行生物分子相互作用的电检测。

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摘要

Detecting biological molecules faster and with greater sensitivity has immediate impact on medicine and healthcare. Disease identification and drug development rely on the ability to detect and identify biological chemicals and their interactions. Currently, most detection techniques rely on optical methods such as a color change to determine the presence of a biological compound. The ability to perform these tests electrically has the potential for faster and more sensitive results and the ability to couple easily with computer analysis.; A unique sensor device and technique for detecting biological molecules has been developed. Here, an electrical sensor with nanometer-scale dimensions is made using standard processes and equipment found in the semiconductor industry. This sensor has the ability to be chemically modified to detect specific biological compounds. This is the first time a device combining these properties effectively for commercial use has been presented. Processes used in the fabrication of the device are shown to be critical in preserving the ability for chemical modification as a sensor.; A unique chemical linking method has also been developed which allows effective biological modification of the device. This modification of the device allows for specific biological molecules to interact with surfaces of the device. The modification can be used to tailor the device to interact with a range of biological molecules including DNA, proteins and other small bio-molecules. The ability of the chemistry to interact with a variety of different species is important for commercialization, because a versatile platform is more economically viable to develop.; Using an example system, this device electrically detected the interaction of two biological molecules. The detection scheme makes the use of biologically modified gold nano-particles, which change the electrical characteristics of the device. The sensitivity of the device is among the highest reported for electrical techniques, and the technique itself appears robust enough for commercial development.; Overall, this unique and cost-effective sensor offers sensitive detection of biological molecules.
机译:更快,更灵敏地检测生物分子对医学和医疗保健具有直接影响。疾病鉴定和药物开发依赖于检测和鉴定生物化学物质及其相互作用的能力。当前,大多数检测技术依靠诸如变色之类的光学方法来确定生物化合物的存在。电气执行这些测试的能力可能带来更快,更敏感的结果,并易于与计算机分析结合。已经开发了用于检测生物分子的独特的传感器设备和技术。在这里,使用半导体工业中发现的标准工艺和设备来制造具有纳米级尺寸的电传感器。该传感器具有被化学修饰以检测特定生物化合物的能力。这是首次提出一种将这些特性有效结合起来用于商业用途的设备。器件制造过程中使用的工艺对保持传感器化学修饰能力至关重要。还开发了一种独特的化学连接方法,该方法可以对装置进行有效的生物学修饰。装置的这种修改允许特定的生物分子与装置的表面相互作用。该修饰可以用于定制该装置以与包括DNA,蛋白质和其他小生物分子的一系列生物分子相互作用。化学作用与多种不同物种相互作用的能力对于商业化很重要,因为开发多功能平台在经济上更可行。使用示例系统,该设备电检测了两个生物分子的相互作用。该检测方案利用了生物改性的金纳米粒子,从而改变了设备的电学特性。该设备的灵敏度是电气技术中报告的最高之一,并且该技术本身似乎足以用于商业开发。总体而言,这种独特且具有成本效益的传感器可以灵敏地检测生物分子。

著录项

  • 作者

    Cuiffi, Joseph Dennis.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Engineering Electronics and Electrical.; Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 117 p.
  • 总页数 117
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;生物医学工程;
  • 关键词

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