IP Library Granted Patent US 9,056,299
Granted Patent B2
US 9,056,299 · App. 13/255,342 · Granted Jun 16, 2015

Scale-up of flow-focusing microfluidic devices

Inventors: Mark Romanowsky (Cambridge, MA); Adam R. Abate (San Francisco, CA); David A. Weitz (Bolton, MA)
Assignee: President and Fellows of Harvard College
B01J19/0093B01F3/0807B01F13/0062B01J2219/00015B01J2219/00783B01J2219/00828B01J2219/00831B01J2219/00833B01J2219/00837B01J2219/00889B01J2219/00891B01J2219/0097B01J2219/00975B01L3/502784
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,056,299
App. No.
13/255,342
Granted
Jun 16, 2015
Kind
B2
Abstract

Parallel uses of microfluidic methods and devices for focusing and/or forming discontinuous sections of similar or dissimilar size in a fluid are described. In some aspects, the present invention relates generally to flow-focusing-type technology, and also to microfluidics, and more particularly parallel use of microfluidic systems arranged to control a dispersed phase within a dispersant, and the size, and size distribution, of a dispersed phase in a multi-phase fluid system, and systems for delivery of fluid components to multiple such devices.

Claims (35)

1. A system for forming droplets in microfluidic channels in parallel, comprising:

a distribution channel having an inlet fluidly connected to a plurality of microfluidic subject fluid outlets arranged parallel to each other, each outlet defining a portion of a microfluidic interconnected region in fluid communication with at least one dispersing fluid channel fluidly connected to a source of a dispersing fluid; and

at least one intermediate fluid channel fluidly connecting to the interconnected region and subject fluid outlets.

2. A system as in claim 1 , wherein the intermediate fluid channel has an outlet between an upstream portion and an outlet of the interconnected region.

3. A system as in claim 1 , wherein the intermediate fluid channel has an outlet upstream of a dimensionally-restricted portion of the interconnected region.

4. A system as in claim 1 , wherein the distribution channel is laterally separated from the interconnected region by at least one intermediate fluid channel.

5. A system for forming droplets in microfluidic channels in parallel, comprising:

a distribution channel having an inlet fluidly connected to a plurality of microfluidic subject fluid outlets arranged parallel to each other, each outlet defining a portion of a microfluidic interconnected region in fluid communication with at least one dispersing fluid channel fluidly connected to a source of a dispersing fluid,

wherein the distribution channel and the at least one dispersing fluid channel occupy one plane and the microfluidic interconnected region is situated within a plane that is different from the one plane occupied by the distribution channel and the at least one dispersing fluid channel.

6. A system as in claim 5 , wherein the microfluidic interconnected region is situated in a plane parallel to and below the plane comprising the distribution channel and the at least one dispersing fluid channel.

7. A system as in claim 6 , wherein the at least one dispersing fluid channel comprises at least two dispersing fluid channels, and wherein the at least two dispersing fluid channels fluidly connect to a common dispersing fluid channel.

8. A system as in claim 7 , wherein the common dispersing fluid channel is situated within a plane parallel to the plane comprising the distribution channel and the at least one dispersing fluid channel.

9. A system as in claim 7 , wherein the common dispersing fluid channel is situated within a plane different from the plane comprising the distribution channel and the at least one dispersing fluid channel.

10. A system as in claim 6 , wherein the system comprises at least two distribution channels, each having an inlet fluidly connected to a plurality of microfluidic subject fluid outlets, wherein at least two of the distribution channels fluidly connect to a common subject fluid channel.

11. A system as in claim 10 , wherein the common subject fluid channel is situated within a plane parallel to the plane comprising the at least two distribution channels and the at least one dispersing fluid channel.

12. A system as in claim 10 , wherein the common subject fluid channel is situated within a plane different from the plane comprising the at least two distribution channels and the at least one dispersing fluid channel.

13. A system as in claim 10 , wherein the at least one dispersing fluid channel comprises at least two dispersing fluid channels, and wherein the at least two dispersing fluid channels fluidly connect to a common dispersing fluid channel.

14. A system as in claim 13 , wherein the common dispersing fluid channel is situated within a plane comprising the common subject fluid channel.

15. A system as in claim 6 , further comprising at least one droplet outlet channel fluidly connected to the microfluidic interconnected region.

16. A system as in claim 15 , wherein the droplet outlet channel is situated within the plane comprising the distribution channel and the at least one dispersing fluid channel.

17. A system as in claim 15 , wherein the at least one droplet outlet channel comprises at least two droplet outlet channels.

18. A system as in claim 17 , wherein at least two of the droplet outlet channels are fluidly connected to a common droplet outlet channel.

19. A system as in claim 18 , wherein the common droplet outlet channel is situated within the plane parallel to the plane comprising the distribution channel and the at least one dispersing fluid channel.

20. A system as in claim 18 , wherein the common droplet outlet channel is situated within a plane different from the plane comprising the distribution channel and the at least one dispersing fluid channel.

21. A system as in claim 15 , wherein the at least one droplet outlet channel comprises a droplet capable of hardening.

22. A system as in claim 15 , wherein the at least one droplet outlet channel comprises a droplet capable of forming a gel.

23. A system as in claim 22 , wherein the gel is a hydrogel.

24. A system as in claim 15 , wherein the at least one droplet outlet channel comprises a droplet comprising a nucleic acid.

25. A system as in claim 15 , wherein the at least one droplet outlet channel comprises a droplet comprising an enzyme or a cell.

26. A system as in claim 5 , wherein the aspect ratio of at least one channel is at least 2:1.

27. A system as in claim 15 , wherein the at least one droplet outlet channel comprises droplets, and wherein an accumulated volume that is contained in the droplets generated by the system is at least 200 milliliter per day.

28. A system as in claim 7 , wherein the distribution channel is fluidly connected to a source of subject fluid.

29. A system as in claim 10 , wherein the common subject fluid channel is fluidly connected to a source of subject fluid.

30. A system as in claim 15 , wherein the droplet outlet channel is fluidly connected to a droplet collector.

31. A system as in claim 18 , wherein the common droplet outlet channel is fluidly connected to a droplet collector.

Assignments (2)
CONFIRMATORY LICENSE Recorded May 24, 2012
From: HARVARD UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 028274/0614 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 16, 2011
From: ROMANOWSKY, MARK; ABATE, ADAM R.; WEITZ, DAVID A.
To: PRESIDENT AND FELLOWS OF HARVARD COLLEGE
Reel/Frame 027233/0176 →
Continuity (3)
Provisional Application 61160184 · Mar 13, 2009
Provisional Application 61223627 · Jul 7, 2009
Related Publication 20120121481A1 · May 17, 2012