Preparation method and application of electrochemical micro-fluidic sensing chip
A sensor chip and microfluidic technology, applied in chemical instruments and methods, scientific instruments, laboratory containers, etc., can solve the problems of poor repeatability of electrochemical detection, complicated preparation process, high cost, etc., and achieve ultra-high detection Sensitivity and accuracy, detection repeatability, light weight effect
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Embodiment 1
[0043] (a) Use Freehand drawing software to design microfluidic pipeline drawing mask. The pipeline design is designed according to fluid mechanics as figure 1 As shown, the inlet and outlet have a certain arc design without right angles. The middle of the pipe is elliptical to ensure that the liquid passes smoothly through the surface of the working electrode. This technology is different from other microfluidic chips that usually use rectangular pipe designs.
[0044] (b) Use soft lithography standard micromachining technology to prepare PDMS chips.
[0045] (c) Preparation of glass solution, 3-aminopropyltriethoxysilane (APTS), ethyl orthosilicate (TEOS), ethanol (Et OH), water (H 2 O pH=2-8) Mix by 1:1:1:1:1 volume ratio, sonicate for 5-30min, and mature at 20-90℃ for 2-24h. For example, the ultrasonic can be 5min, 15min, 30min, the curing temperature can be 20℃, 50℃, 90℃, and the curing time can be 2h, 15h, 24h and so on.
[0046] (d) Coat a layer of glass solution evenly on the...
Embodiment 2
[0054] (a) Use Freehand drawing software to design the microfluidic pipeline drawing mask. The specific design is shown in the attachment figure 1 .
[0055] (b) Use soft lithography standard micromachining technology to prepare PDMS chips.
[0056] (c) Preparation of glass solution, 3-aminopropyl triethoxysilane (APTS), ethyl orthosilicate (TEOS), ethanol (Et OH), water (H 2 O pH=2-8) Mix at a volume ratio of 5:1:1:1:1 to 1:5:10:20, sonicate for 5-15min, and mature at 20-90℃ for 2-24h.
[0057] (d) Coat a layer of glass solution evenly on the surface of the standardized printed electrode, and let it dry at room temperature.
[0058] (e) Put the PDMS chip and the printed electrode coated with glass O 2 Plasma treatment for 60s, then bonding.
[0059] (f) Fix 50 μL of 0.05-0.5 mg / m magnetic beads with CEA capture antibody to the working area of the chip electrode under the action of an external magnetic field.
[0060] (g) Inject 100 μL of 0.1 ng / mL CEA antigen into the chip at 10 μL / mi...
Embodiment 3
[0065] (a) Use Freehand drawing software to design the microfluidic pipeline drawing mask. The specific design is shown in the attachment figure 1 .
[0066] (b) Use soft lithography standard micromachining technology to prepare PDMS chips.
[0067] (c) Preparation of glass solution, 3-aminopropyl triethoxysilane (APTS), ethyl orthosilicate (TEOS), ethanol (Et OH), water (H 2 O pH=2-8) Mix by volume ratio of 1:5:10:20, sonicate for 5-20min, and mature at 20-90℃ for 2-24h.
[0068] (d) Coat a layer of glass solution evenly on the surface of the standardized printed electrode, and let it dry at room temperature.
[0069] (e) Put the PDMS chip and the printed electrode coated with glass O 2 Plasma treatment for 90s, then bonding.
[0070] (f) Fix 50μL of 0.05-0.5mg / m magnetic beads with CA199 capture antibody to the working area of the chip electrode under the action of an external magnetic field.
[0071] (g) Inject 100μL of 10ng / mL, CA199 antigen into the chip at 2-50μL / min through a sy...
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