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首页> 外文期刊>Analytical chemistry >Resonance-Frequency Modulation for Rapid, Point-of-Care Ebola-Glycoprotein Diagnosis with a Graphene-Based Field-Effect Biotransistor
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Resonance-Frequency Modulation for Rapid, Point-of-Care Ebola-Glycoprotein Diagnosis with a Graphene-Based Field-Effect Biotransistor

机译:快速,护理点埃博拉 - 糖蛋白诊断的共振频率调节与基于石墨烯的场效应生物转换器

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摘要

Recent outbreaks of Ebola-virus infections in several countries demand a rapid point-of-care (POC)-detection strategy. This paper reports on an innovative pathway founded on electronic resonance -frequency modulation to detect Ebola glycoprotein (GP), on the basis of a carrier-injection trapping release transfer mechanism and the standard antibody antigen-interaction principle within a dielectric-gated reduced graphene oxide (rGO) field-effect transistor (GFET). The sensitivity of Ebola detection can be significantly enhanced by monitoring the device's electronic resonance frequency, such as its inflection frequency (f(i)), where the phase angle reaches a maximum (theta(max)). In addition to excellent selectivity, a sensitivity of similar to 36-160% and similar to 17-40% for 0.001-3.401 mg/L Ebola GP can be achieved at high and low inflection resonance frequencies, respectively, which are several orders of magnitude higher than the sensitivity from other electronic parameters (e.g., resistance-based sensitivity). Using equivalent circuit modeling for contributions from channel and contact, analytical equations for resonance shifts have been generalized. When matching with the incoming ac-measurement signal, electronic resonance from the phase-angle spectrum evolves from various relaxation processes (e.g., trap and release of injected charges at surface-trap sites of the channel gate oxide and channel source or drain interfaces) that are associated with a characteristic emission frequency. Using charge-relaxation dynamics, a high-performance bio-FET sensing platform for healthcare and bioelectronic applications is realized through resonance shifting.
机译:近期国家的最近爆发了埃博拉病毒感染需要快速的护理(POC)策略。本文报告了在电子共振 - 频率调制上创建的创新途径,以检测埃博拉糖蛋白(GP),基于载流子注射捕获释放转移机制和在介电 - 门控的​​石墨烯氧化物内的标准抗体抗原 - 相互作用原理(RGO)场效应晶体管(GFET)。通过监视设备的电子谐振频率(例如其拐点)(F(i)),可以显着提高埃博拉检测的灵敏度,其中相角达到最大值(θ(max))。除了优异的选择性外,可以在高低拐点的共振频率下实现类似于36-160%且类似于17-40%的36-160%且相似的敏感性,这是几个数量级的几个数量级高于其他电子参数的灵敏度(例如,基于电阻的灵敏度)。使用等效电路建模用于来自信道和触点的贡献,共振偏移的分析方程已经推广。当与进入的交流测量信号匹配时,来自相位角谱的电子共振从各种弛豫过程中演变(例如,捕获沟道栅极氧化物和沟道源或漏极界面的表面陷阱部位的喷射电荷的捕获和释放)与特征发射频率相关联。使用充电放松动态,通过共振移位实现了用于医疗保健和生物电子应用的高性能生物FET传感平台。

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  • 来源
    《Analytical chemistry》 |2018年第24期|共9页
  • 作者单位

    Univ Wisconsin Milwaukee Dept Mech Engn 3200 North Cramer St Milwaukee WI 53211 USA;

    Univ Wisconsin Milwaukee Dept Mech Engn 3200 North Cramer St Milwaukee WI 53211 USA;

    Univ Wisconsin Milwaukee Dept Mech Engn 3200 North Cramer St Milwaukee WI 53211 USA;

    Univ Wisconsin Milwaukee Dept Mech Engn 3200 North Cramer St Milwaukee WI 53211 USA;

    Univ Wisconsin Milwaukee Dept Mech Engn 3200 North Cramer St Milwaukee WI 53211 USA;

    Univ Wisconsin Milwaukee Dept Mech Engn 3200 North Cramer St Milwaukee WI 53211 USA;

    Univ Wisconsin Milwaukee Dept Mech Engn 3200 North Cramer St Milwaukee WI 53211 USA;

    Univ Wisconsin Milwaukee Dept Mech Engn 3200 North Cramer St Milwaukee WI 53211 USA;

    Univ Wisconsin Milwaukee Dept Mech Engn 3200 North Cramer St Milwaukee WI 53211 USA;

    Univ Wisconsin Milwaukee Dept Mech Engn 3200 North Cramer St Milwaukee WI 53211 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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