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 reduced microelectrode dimensions significantly, and the uniformity among electrodes and trench structures for sensitivity improvement were verified. CV measurements demonstrated direct counting of bacteria-sized microbeads and HeLa cells, showing the platform's effectiveness.
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 limitations include the potential decrease in peak current due to the solution not reaching the edge of the trench and the trench structure reducing the absolute value of peak currents.
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 in the amperometry circuit.
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.
3:6-μm CMOS process with different sensor array configurations. The microelectrodes were formed using electroless plating.
List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: Chemicals and reagents for electroless plating, semiconductor parameter analyzer (HP 4142B), potentiostat, micro controller unit (STM32F103VET6, ST Microelectronics), and a 12-bit 1-μs ADC.
4:Experimental Procedures and Operational Workflow:
The uniformity among electrodes was optically verified. Trenches on each microelectrode were developed and verified for sensitivity improvement. Cyclic voltammetry (CV) measurements were performed to demonstrate direct counting of bacteria-sized microbeads and HeLa cells.
5:Data Analysis Methods:
The effectiveness of the platform was evaluated through CV measurements and direct counting results, comparing theoretical and measured values.
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