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Dual-gate polysilicon nanoribbon biosensors enable high sensitivity detection of proteins

机译:双门多晶硅纳米带生物传感器可实现蛋白质的高灵敏度检测

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摘要

We demonstrate the advantages of dual-gate polysilicon nanoribbon biosensors with a comprehensive evaluation of different measurement schemes for pH and protein sensing. In particular, we compare the detection of voltage and current changes when top- and bottom-gate bias is applied. Measurements of pH show that a large voltage shift of 491 mV pH(-1) is obtained in the subthreshold region when the top- gate is kept at a fixed potential and the bottom-gate is varied (voltage sweep). This is an improvement of 16 times over the 30 mV pH(-1) measured using a top-gate sweep with the bottom-gate at a fixed potential. A similar large voltage shift of 175 mV is obtained when the protein avidin is sensed using a bottom-gate sweep. This is an improvement of 20 times compared with the 8.8 mV achieved from a top-gate sweep. Current measurements using bottom-gate sweeps do not deliver the same signal amplification as when using bottom-gate sweeps to measure voltage shifts. Thus, for detecting a small signal change on protein binding, it is advantageous to employ a double-gate transistor and to measure a voltage shift using a bottom-gate sweep. For top- gate sweeps, the use of a dual-gate transistor enables the current sensitivity to be enhanced by applying a negative bias to the bottom-gate to reduce the carrier concentration in the nanoribbon. For pH measurements, the current sensitivity increases from 65% to 149% and for avidin sensing it increases from 1.4% to 2.5%.
机译:我们通过对pH和蛋白质传感的不同测量方案进行全面评估,证明了双栅极多晶硅纳米带生物传感器的优势。特别是,我们比较了施加顶栅和底栅偏置时对电压和电流变化的检测。 pH值的测量表明,当顶栅保持在固定电位且底栅发生变化(电压扫描)时,在亚阈值区域中获得了491 mV pH(-1)的大电压漂移。这比使用顶栅扫描(底栅处于固定电势)测得的30 mV pH(-1)高出16倍。当使用底栅扫描感测蛋白抗生物素蛋白时,可获得类似的175 mV大电压漂移。与从顶栅扫描获得的8.8 mV相比,这提高了20倍。使用底栅扫描进行的电流测量不能提供与使用底栅扫描测量电压漂移相同的信号放大。因此,为了检测蛋白质结合上的小信号变化,采用双栅晶体管并使用底栅扫描来测量电压偏移是有利的。对于顶栅扫描,双栅晶体管的使用可通过对底栅施加负偏压来降低纳米带中的载流子浓度,从而提高电流灵敏度。对于pH测量,电流灵敏度从65%增加到149%,对于抗生物素蛋白感应,电流灵敏度从1.4%增加到2.5%。

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