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(Invited) Biomolecular Sensors Based on Nanocarbon Field-Effect Transistors: Advances in Design, Fabrication and Characterization

机译:(邀请的)基于纳米碳场效应晶体管的生物分子传感器:设计,制造和表征的进步

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Nanoscale field-effect transistors (FETs) embedded in microfluidics form a promising technology as compact and portable lab-on-a-chip biosensors for applications in biology and medicine. Such sensors can be designed to monitor a variety of biochemical mechanisms, at the ensemble or single-molecule scale, through fluctuations in the electrical conductance of the circuit. In particular, nanocarbon materials, i.e. carbon nanotubes and graphene, are materials of choice for FET biosensors, due to their high electrical conductance, the sensitivity of their electronic properties to the surrounding environment, and the versatility of their carbon-based surface chemistry. In this presentation, I will report on recent developments and key considerations in the design, fabrication and characterization of such nanocarbon-based biomolecular FET sensors. In particular, I will discuss approaches for chemical functionalization and structural patterning of nanocarbon materials to optimize their coupling with molecules. I will also describe hardware and software developments for the analysis of single-molecule measurements in hybrid biomolecule-nanocarbon FET devices.
机译:纳米级场效应晶体管(FET)嵌入微流体中,形成了一种充满希望的技术,可作为芯片和便携式实验室的生物传感器,用于生物学和药物中的应用。这种传感器可以设计成在集合或单分子中通过电路的电导中的波动来监测各种生化机制。特别地,纳米碳材料,即碳纳米管和石墨烯,是FET生物传感器的首选材料,因为它们的电导率高,其电子性质对周围环境的灵敏度以及其碳基表面化学的多功能性。在本演示文稿中,我将报告这些基于纳米碳基生物分子传感器的设计,制造和表征的最新的发展和关键考虑因素。特别是,我将讨论纳米碳材料的化学官能化和结构图案化的方法,以优化它们与分子的偶联。我还将描述用于分析混合生物分子纳米碳FET器件的单分子测量的硬件和软件开发。

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