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Flexible Electronics and Display Technology for Medical, Biological, and Life Science Applications.

机译:适用于医学,生物和生命科学应用的柔性电子和显示技术。

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摘要

This work explores how flexible electronics and display technology can be applied to develop new biomedical devices for medical, biological, and life science applications. It demonstrates how new biomedical devices can be manufactured by only modifying or personalizing the upper layers of a conventional thin film transistor (TFT) display process. This personalization was applied first to develop and demonstrate the world's largest flexible digital x-ray detector for medical and industrial imaging, and the world's first flexible ISFET pH biosensor using TFT technology. These new, flexible, digital x-ray detectors are more durable than conventional glass substrate x-ray detectors, and also can conform to the surface of the object being imaged. The new flexible ISFET pH biosensors are >10X less expensive to manufacture than comparable CMOS-based ISFETs and provide a sensing area that is orders of magnitude larger than CMOS-based ISFETs. This allows for easier integration with area intensive chemical and biological recognition material as well as allow for a larger number of unique recognition sites for low cost multiple disease and pathogen detection.;The flexible x-ray detector technology was then extended to demonstrate the viability of a new technique to seamlessly combine multiple smaller flexible x-ray detectors into a single very large, ultimately human sized, composite x-ray detector for new medical imaging applications such as single-exposure, low-dose, full-body digital radiography. Also explored, is a new approach to increase the sensitivity of digital x-ray detectors by selectively disabling rows in the active matrix array that are not part of the imaged region. It was then shown how high-resolution, flexible, organic light-emitting diode display (OLED) technology can be used to selectively stimulate and/or silence small groups of neurons on the cortical surface or within the deep brain as a potential new tool to diagnose and treat, as well as understand, neurological diseases and conditions. This work also explored the viability of a new miniaturized high sensitivity fluorescence measurement-based lab-on-a-chip optical biosensor using OLED display and a-Si:H PiN photodiode active matrix array technology for point-of-care diagnosis of multiple disease or pathogen biomarkers in a low cost disposable configuration.
机译:这项工作探索了如何将柔性电子和显示技术应用于开发用于医学,生物学和生命科学应用的新型生物医学设备。它演示了如何仅通过修改或个性化常规薄膜晶体管(TFT)显示过程的上层来制造新的生物医学设备。此个性化设置首先用于开发和演示世界上最大的用于医学和工业成像的柔性数字X射线检测器,以及世界上首个使用TFT技术的柔性ISFET pH生物传感器。这些新型,灵活的数字X射线探测器比传统的玻璃基板X射线探测器更耐用,并且还可以顺应被成像物体的表面。与基于CMOS的ISFET相比,新型的柔性ISFET pH生物传感器的制造成本降低了10倍以上,并且提供的传感面积比基于CMOS的ISFET大了几个数量级。这样可以更容易地与区域密集的化学和生物识别材料整合,并允许用于低成本多种疾病和病原体检测的大量独特识别位点;然后扩展了灵活的X射线检测器技术,以证明其可行性一种新技术,可将多个较小的柔性X射线探测器无缝组合成一个非常大的,最终达到人类尺寸的复合X射线探测器,用于新的医学成像应用,例如单次曝光,低剂量全身数字X射线照相。还探索了一种通过有选择地禁用有源矩阵阵列中不属于成像区域的行来提高数字X射线检测器灵敏度的新方法。然后显示了如何将高分辨率,灵活的有机发光二极管显示器(OLED)技术用于选择性刺激和/或沉默皮层表面或深层大脑内部的小神经元群,作为潜在的新工具。诊断和治疗以及了解神经系统疾病和状况。这项工作还探索了使用OLED显示屏和a-Si:H PiN光电二极管有源矩阵阵列技术的新型基于微型高灵敏度荧光测量的芯片实验室光学生物传感器的可行性,该技术可用于多种疾病的即时诊断或低成本一次性配置的病原体生物标记。

著录项

  • 作者

    Smith, Joseph T.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Engineering Electronics and Electrical.;Health Sciences Radiology.;Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 188 p.
  • 总页数 188
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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