研究目的
To develop high-density, electroless plated microelectrode arrays for CMOS-based high-sensitivity direct bacteria and HeLa cell counting, addressing the challenges of forming bacteria-sized microelectrodes and developing high-sensitivity and high-speed amperometry circuits.
研究成果
The development of bacteria-sized microelectrode arrays using electroless plating for CMOS-based high-sensitivity direct bacteria counting was successful. The technique allows for the reduction of microelectrode dimensions and the introduction of trench structures for improved sensitivity. The study demonstrated the feasibility of direct counting of bacteria-sized microbeads and HeLa cells, marking a significant advancement towards rapid pathogen detection.
研究不足
The study acknowledges the technical challenges in forming bacteria-sized microelectrodes and the need for high-sensitivity and high-speed amperometry circuits. The scalability of microelectrode size and the gap between electrodes are also noted as limitations.
1:Experimental Design and Method Selection
The study improved a self-aligned electroless plating technique to reduce microelectrode dimensions on a CMOS sensor chip. A current buffer was inserted to mitigate potential fluctuation for high sensitivity and high-speed amperometry.
2:Sample Selection and Data Sources
Three test chips were fabricated using a 0.6-μm CMOS process with different sensor array configurations. The microelectrodes were formed using electroless plating.
3:List of Experimental Equipment and Materials
Semiconductor parameter analyzer (HP 4142B), potentiostat, micro controller unit (STM32F103VET6, ST Microelectronics), and chemicals for electroless plating and amperometry.
4:Experimental Procedures and Operational Workflow
The microelectrodes were formed using electroless plating on CMOS sensor chips. Cyclic voltammetry (CV) measurements were performed to verify the electrochemical properties and direct counting capabilities.
5:Data Analysis Methods
The effectiveness of the microelectrode arrays was verified through optical and electrochemical measurements, including CV to assess sensitivity and direct counting capabilities.
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