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Fabrication and Characterization of Microwave Immunosensors Based on Organic Semiconductors with Nanogold-Labeled Antibody

机译:基于有机半导体的微波免疫传感器的制备与表征纳米型标记抗体

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摘要

Microelectronic biosensors hold great promise for rapid, sensitive and specific in vitro point-of-care immunodiagnostics. In particular, sensors fabricated using organic semiconductors have attractive advantages - such as ease of manufacture and low cost - in the design and implementation of such devices. Furthermore, immobilization of an antibody or protein antigen as a biorecognition element onto an organic semiconducting film allows for direct transduction of biomolecular binding events into an electronic signal which is readily measured and processed. In previous work, we have demonstrated that an antigen can be bound to organic semiconducting films while retaining enzymatic activity after immobilization. The present work considers organic semiconducting films which are spin-cast onto an interdigitated electrode; antibodies labeled with gold-nanoparticles are applied to the organic semiconducting film and serve as a biorecognition element. The sensor geometry includes a high-frequency coplanar waveguide contact metallization to facilitate direct measurement using microwave wafer probes. Equivalent circuit models are derived from microwave measurements over the frequency range 0.3 MHz to 8.5 GHz.
机译:微电子生物传感器对快速,敏感和特异性的体外免疫诊断具有很大的承担。特别地,使用有机半导体制造的传感器具有有吸引力的优点 - 例如易于制造和低成本 - 在这些装置的设计和实施方面。此外,将抗体或蛋白质抗原作为生物认知元素固定到有机半导体膜上允许将生物分子结合事件的直接转导到容易测量和加工的电子信号中。在以前的工作中,我们已经证明了抗原可以与有机半导体膜结合,同时保持固定后酶活性。本作者认为有机半导体膜,其旋浇 - 浇铸到互脱电极上;用金纳米颗粒标记的抗体施加到有机半导体膜上并用作生物识别元件。传感器几何形状包括高频共面波导接触金属化,以便于使用微波晶片探针直接测量。等效电路模型源自0.3MHz至8.5 GHz的微波测量。

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