Surface tension controlled valves
View Patent ↗The present teachings relate to surface tension controlled valves used for handling biological fluids. The valves controlled by optically actuating an electro-wetting circuit.
1. A valving system for liquid comprising:
a channel defined by a channel wall;
a first reservoir connected via the channel to a second reservoir, wherein the first reservoir includes a first liquid;
a first insulating layer portion and a second insulating layer portion, each coupled to the interior surface of the channel wall of a portion of the channel;
a photoconductive material coupled to the first insulating layer portion, wherein the first insulating layer portion and the second insulating layer portion coupled to the interior surface of the channel wall prevent the flow of liquid between the at least two reservoirs; and
a power source in electrical communication with the photoconductive material, wherein the photoconductive material is activatable by directed light to provide an electrical potential difference across the first insulating layer portion and the second insulating layer portion, and wherein the electrical potential difference is operable for reducing the resistance of the first insulating layer portion and the second insulating layer portion to allow the first liquid to flow into the second reservoir.
2. The system of claim 1 , wherein the second reservoir includes a second liquid and wherein the electrical potential difference is operable for reducing the resistance of the first insulating layer portion and the second insulating layer portion to allow the first liquid to flow into the second reservoir to mix with the second liquid.
3. The system according to claim 1 , further comprising a conductive layer located between the first insulating layer portion and the photoconductive material.
4. The system according to claim 1 , wherein the first and second reservoirs are chosen from wells and channels.
5. The system according to claim 1 , wherein the valving system is configured to control the flow of the liquid between the at least two reservoirs.
6. The system according to claim 1 , wherein the first insulating layer portion and the second insulating layer portion comprises a hydrophobic material.
7. The system according to claim 1 , wherein reducing the resistance of the first insulating layer portion and the second insulating layer portion changes the first insulating layer portion and the second insulating portion to be hydrophilic.
8. A method for moving a liquid in a valving system, the method comprising:
providing a first liquid in a first reservoir of the valving system, wherein the valving system comprises:
a channel defined by a channel wall,
a second reservoir connected via the channel to the first reservoir, wherein the first reservoir includes the first liquid,
a first insulating layer portion and a second insulating layer portion, each coupled to the interior surface of the channel wall of a portion of the channel,
a photoconductive material coupled to the first insulating layer portion, wherein the first insulating layer portion and the second insulating layer portion coupled to the interior surface of the channel wall prevent the flow of liquid between the at least two reservoirs, and
a power source in electrical communication with the photoconductive material, wherein the photoconductive material is activatable by directed light to provide an electrical potential difference across the first insulating layer portion and the second insulating layer portion, and wherein the electrical potential difference is operable for reducing the resistance of the first insulating layer portion and the second insulating layer portion to allow the first liquid to flow into the second reservoir; and
activating a directed light source to activate the photoconductive material to allow the first liquid to flow into the second reservoir.
9. The method of claim 8 , wherein the second reservoir includes a second liquid and wherein the electrical potential difference is operable for reducing the resistance of the first insulating layer portion and the second insulating layer portion to allow the first liquid to flow into the second reservoir to mix with the second liquid.
10. The method of claim 9 , further comprising:
mixing the first liquid with the second liquid in the second reservoir.
11. The method of claim 10 , further comprising, deactivating the directed light source to prevent the first liquid from flowing into the second reservoir.
12. The method of claim 8 , wherein the valving system further comprises a conductive layer located between the first insulating layer portion and the photoconductive material.
13. The method of claim 8 , wherein the first and second reservoirs are chosen from wells and channels.
14. The method of claim 8 , wherein the first insulating layer portion and the second insulating layer portion comprises a hydrophobic material.
15. The method of claim 8 , wherein activating the photoconductive material reduces the resistance of the first insulating layer portion and the second insulating layer portion so that the first insulating layer portion and the second insulating portion is hydrophilic.