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The Development of CMOS Amperometric Sensing Chip with a Novel 3-Dimensional TiN Nano-Electrode Array

机译:新型3维TiN纳米电极阵列的CMOS安培传感芯片的开发

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摘要

An electrochemical sensing chip with an 8 × 8 array of titanium nitride three-dimensional nano-electrodes (TiN 3D-NEA) was designed and fabricated via a standard integrated complementary metal oxide semiconductor process. Each nano-electrode in 3D-NEA exhibited a pole-like structure with a radius of 100 nm and a height of 35 nm. The numeric simulation showed that the nano-electrode with a radius of around 100 nm exhibited a more uniformly distributed electric field and a much higher electric field magnitude compared to that of the microelectrode. Cyclic voltammetry study with Ru(NH3)63+ also revealed that the TiN 3D-NEA exhibited a much higher current density than that obtained from the microelectrode by two orders of magnitude. Further studies showed that the electrocatalytical reduction of hydrogen peroxide (H2O2) could occur on a TiN 3D-NEA-based sensing chip with a high sensitivity of 667.2 mA⋅mM−1⋅cm−2. The linear detection range for H2O2 was between 0.1 μM and 5 mM with a lowest detection limit of 0.1 μM. These results indicated that the fabricated TiN 3D-NEA exhibited high catalytic activity and sensitivity to H2O2 and could be a promising sensor for H2O2 measurement.
机译:通过标准的集成互补金属氧化物半导体工艺设计并制造了具有8×8氮化钛三维纳米电极(TiN 3D-NEA)阵列的电化学传感芯片。 3D-NEA中的每个纳米电极都呈现出半径为100 nm,高度为35 nm的极状结构。数值模拟表明,与微电极相比,半径约为100 nm的纳米电极表现出更均匀的分布电场和更高的电场强度。用Ru(NH3)6 3 + 进行的循环伏安研究也表明,TiN 3D-NEA的电流密度比从微电极获得的电流密度高两个数量级。进一步的研究表明,在基于TiN 3D-NEA的传感芯片上可以发生过氧化氢(H2O2)的电催化还原,其高灵敏度为667.2mA⋅mM -1 ⋅cm -2 。 H2O2的线性检测范围为0.1μM至5 mM,最低检测限为0.1μM。这些结果表明,所制备的TiN 3D-NEA具有较高的催化活性和对H2O2的敏感性,并且可能是用于H2O2测量的有希望的传感器。

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