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An array-based CMOS biochip for electrical detection of DNA with multilayer self-assembly gold nanoparticles

机译:基于阵列的CMOS生物芯片,用于利用多层自组装金纳米颗粒对DNA进行电检测

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This paper presents an array-based CMOS biochip for DNA detection using self-assembly multilayer gold nanoparticles (AuNPs). The biochip is fabricated by a TSMC 0.35 μm standard CMOS process and post-CMOS micromachining processes. Before taking DNA detection measurements, self-assembly monolayer of AuNPs is established on SiO_2 surface between two microelectrodes. The gap distance between the two microelectrodes in this study is less than 800 nm. First, capture oligonucleotide strands are immobilized on the top surface of self-assembly monolayer of AuNPs. On each measuring spot, selective binding occurs among thiol-modified probe oligonucleotide strands, capture oligonucleotide strands, and target oligonucleotide strands if the target oligonucleotide strands are complementary with the probe and capture oligonucleotide strands in the sample solution. Finally, through a self-assembly process between suspended gold nanoparticles and the thiol-modified end of probe oligonucleotide strand, a multilayer of AuNPs on the nanogap surface can be established. The DNA hybridization can be determined by a sharp decrease in impedance over the nanogap between the two microelectrodes, which results from an increase in the number of AuNPs layers. Measured results show that the electric current of multilayer AuNPs is about 1000 times greater than that of monolayer AuNPs. The effect of nanogap distance is also investigated. It is shown that the electrical conductivity decreases with the increase of gap distance.
机译:本文提出了一种基于阵列的CMOS生物芯片,用于使用自组装多层金纳米颗粒(AuNPs)进行DNA检测。通过台积电0.35μm标准CMOS工艺和CMOS后微加工工艺制造生物芯片。在进行DNA检测之前,在两个微电极之间的SiO_2表面上建立了AuNPs的自组装单层。在这项研究中,两个微电极之间的间隙距离小于800 nm。首先,将捕获寡核苷酸链固定在AuNPs自组装单层的顶表面上。在每个测量点,如果目标寡核苷酸链与探针互补并捕获样品溶液中的寡核苷酸链,则硫醇修饰的探针寡核苷酸链,捕获寡核苷酸链和目标寡核苷酸链之间会发生选择性结合。最后,通过悬浮金纳米颗粒与探针寡核苷酸链的巯基修饰末端之间的自组装过程,可以在纳米间隙表面上建立AuNP的多层。 DNA杂交可以通过两个微电极之间纳米间隙的阻抗急剧下降来确定,这是由于AuNPs层数增加所致。测量结果表明,多层AuNP的电流大约是单层AuNP的电流的1000倍。还研究了纳米间隙距离的影响。结果表明,电导率随间隙距离的增加而减小。

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