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Functional Electrodes Based on Signal-Responsive Materials for Bioelectronic Applications.

机译:基于信号响应材料的生物电子应用功能电极。

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摘要

Chemical systems mimicking Boolean logic gates and their networks are considered as a novel platform for unconventional computing. In most cases, chemical logic operations are activated by external physical or chemical signals, and the readout is read by optical methods or electrochemical means. Normally, the physical nature of the input and output signals is different, making the assembly of multi-component logic networks difficult. They have been applied to model various digital electronic devices. However, the application of biomolecular systems allows achieving higher complexity logic systems while using much simpler chemical tools, due to natural specificity and compatibility of biomolecules.;The thesis outlines different approaches regarding the integration of biocomputing system processing biochemical information and physical signal generating systems with stimuli-responsive polymer functionalized electrode surfaces. Different electrodes modified with signal-responsive materials are designed as switchable electrochemical interfaces controlled by various physical or chemical signals. Besides, "Smart" switchable electrodes for biosensors and biofuel cells with built-in biomolecular logic systems were founded. This work introduces autonomous, individual and "upon-demand" bioelectronic devices by interfacing between the biocomputing systems mimicking biochemical natural network and functional electrodes. Biofuel cells with switchable power release controlled by biomolecular computing systems are presented, and the switchable properties of the biofuel cells are based on the polymer-brush-modified electrodes with the activity dependent on the external pH value. The pH changes generated in situ by bioacatalytic reactions allowed the reversible actuation of the bioelectrocatalytic interfaces, thus affecting the activity of the entire biofuel cells. Integration of switchable electrode interfaces with biocomputing systems based on enzyme- or immune-based systems is evaluated.;In addition, innovative designs of "security" biofuel cells using pH-responsive polymer modified electrodes were integrated with the biocomputing system. An enzyme-based keypad lock system was integrated with a biofuel cell using a pH-switchable cathode as the interface with the electrochemical activity controlled by the "password" encoded in the biomolecular security system. The system allowed self-powered read out of the "answer" generated by the keypad lock system. A further advanced system biomolecular security device included participation of immune-recognition components in the design of the biocomputing logic network.
机译:模仿布尔逻辑门及其网络的化学系统被认为是用于非常规计算的新颖平台。在大多数情况下,化学逻辑运算是由外部物理或化学信号激活的,而读数是通过光学方法或电化学方法读取的。通常,输入和输出信号的物理性质是不同的,这使得组装多组件逻辑网络很困难。它们已被应用于对各种数字电子设备进行建模。然而,由于生物分子的自然特异性和兼容性,生物分子系统的应用允许使用更简单的化学工具实现更高复杂度的逻辑系统。论文概述了处理生物化学信息的生物计算系统与物理信号产生系统的集成的不同方法。刺激响应聚合物功能化的电极表面。用信号响应材料改性的不同电极被设计为由各种物理或化学信号控制的可切换电化学界面。此外,还建立了带有内置生物分子逻辑系统的用于生物传感器和生物燃料电池的“智能”可切换电极。这项工作通过模仿生物化学自然网络的生物计算系统和功能电极之间的接口,引入了自主的,个体的和“按需”生物电子设备。提出了具有由生物分子计算系统控制的可切换功率释放的生物燃料电池,并且生物燃料电池的可切换特性基于聚合物刷修饰的电极,其活性取决于外部pH值。通过生物催化反应原位产生的pH值变化可逆地激活生物电催化界面,从而影响整个生物燃料电池的活性。评估了可切换电极接口与基于酶或免疫系统的生物计算系统的集成。;此外,使用pH响应聚合物修饰电极的“安全”生物燃料电池的创新设计已与生物计算系统集成。基于酶的键盘锁系统与生物燃料电池集成在一起,使用pH可切换的阴极作为界面,其电化学活性受生物分子安全系统中编码的“密码”控制。该系统允许自供电读取键盘锁定系统生成的“答案”。另一种先进的系统生物分子安全装置包括免疫识别组件参与生物计算逻辑网络的设计。

著录项

  • 作者

    Tam, Tsz Kin.;

  • 作者单位

    Clarkson University.;

  • 授予单位 Clarkson University.;
  • 学科 Chemistry Biochemistry.;Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 215 p.
  • 总页数 215
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:50

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