Microfluidic chips with optically transparent glue coating and a method of manufacturing microfluidic chips with optically transparent glue coating for a microfluidic device
A microfluidic chip for a microfluidic system includes a PDMS substrate having a first thickness, at least one microfluidic pathway in the substrate, a coating along the microfluidic pathway, and a glass layer having a second thickness on the substrate and above the microfluidic pathway, wherein the coating contains an optically transparent material, and the first thickness is greater than the second thickness. The coating includes cyanoacrylates, an UV curable epoxy adhesive, a gel epoxy or epoxy under trade name of EPO-TEK OG175, MasterBond EP30LV-1 or Locite 0151.
1. A device, comprising:
a substrate having a first thickness;
at least one microfluidic pathway in the substrate, wherein the microfluidic pathway includes channels etched in the substrate;
a coating along the microfluidic pathway, and a glass layer having a second thickness on the substrate and above the microfluidic pathway, wherein the coating contains cyanoacrylates, wherein the coating is configured to be coated along the channels while not contacting the glass layer in the microfluidic pathway, said coating thereby not filling the channels;
wherein the coating is configured to seal the channels of the microfluidic pathway, while not filling the channels,
wherein the coating is not configured to be used as an adhesive in the channels of the substrate, and
the first thickness is greater than the second thickness.
2. The device according to claim 1 , wherein the coating is resistant to temperature as high as about 100 degree Celsius.
3. The device according to claim 1 , wherein the coating is formed on a top surface of the substrate after the channels are formed.
4. The device according to claim 3 , further comprising:
a heating element on the glass layer and above the microfluidic pathway.
5. The device according to claim 4 , wherein the heating element includes a thin-film heater.
6. The device according to claim 4 , further comprising:
a temperature sensor on the heating element.
7. The device according to claim 6 , wherein the temperature sensor includes a resistive temperature device sensor.
8. The device according to claim 1 , wherein the substrate includes PDMS.
9. A device, comprising:
a substrate having a first thickness;
at least one microfluidic pathway in the substrate, wherein the microfluidic pathway includes channels etched in the substrate;
a coating along the microfluidic pathway, and a glass layer having a second thickness on the substrate and above the microfluidic pathway, wherein the coating contains an optically transparent material, wherein the coating is configured to be coated along the channels while not contacting the glass layer in the microfluidic pathway, said coating thereby not filling the channels;
wherein the coating is configured to seal the channels of the microfluidic pathway, while not filling the channels,
wherein the coating is not configured to be used as an adhesive in the channels of the substrate, and
the first thickness is greater than the second thickness.
10. The device according to claim 9 , wherein the coating is resistant to temperature as high as about 100 degree Celsius.
11. The device according to claim 9 , wherein the coating is formed on a top surface of the substrate after the channels are formed.
12. The device according to claim 9 , wherein the substrate includes PDMS.
13. A method for manufacturing a device, comprising:
etching a substrate having a first thickness for forming at least one microfluidic pathway in the substrate, wherein the microfluidic pathway includes channels etched in the substrate;
coating the substrate with the at least one microfluidic pathway; and
bonding a glass layer having a second thickness on the substrate and above the microfluidic pathway, wherein
the step of coating includes coating an optically transparent material, wherein the coating is coated along the channels while not contacting the glass layer in the microfluidic pathway, said coating thereby not filling the channels;
wherein the coating seals the channels of the microfluidic pathway, while not filling the channels,
wherein the coating is not used as an adhesive in the channels of the substrate, and
the first thickness is greater than the second thickness.
14. The method according to claim 13 , wherein the coating is resistant to temperature as high as about 100 degree Celsius.
15. The method according to claim 13 , wherein the step of etching is performed prior to the step of coating.
16. The method according to claim 13 , further comprising:
forming a heating element on the glass layer and above the microfluidic pathway.
17. The method according to claim 16 , wherein the step of forming the heating element includes
depositing a conductive material on the glass layer and
patterning the conductive material.
18. The method according to claim 16 , further comprising:
providing a resistance temperature detector on the heating element.
19. The method according to claim 13 , wherein the substrate includes PDMS.