IP Library Granted Patent US 12,318,780
Granted Patent B2
US 12,318,780 · App. 17/289,636 · Granted Jun 3, 2025

Fluidic device, injector system, and methods of making and using the same

Inventors: S. Ali Aghvami (Waltham, MA); Seth Fraden (Newton, MA)
Assignee: Brandeis University
B01L3/502784B01L3/502738B01L2200/0621B01L2200/0673B01L2300/087B01L2400/0406B01L2400/0487B01L2400/0688
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Quick Facts
Patent No.
US 12,318,780
App. No.
17/289,636
Granted
Jun 3, 2025
Kind
B2
Abstract

Systems and methods are provided for producing isolated microfluidic droplets. In one aspect, a microfluidic system comprises a droplet isolation device and an injection system. The droplet isolation device includes at least one isolation unit and at least one capillary valve. The isolation unit has at least one chamber configured to receive at least two different aqueous solutions without mixing prior to entering the at least one chamber based at least in part on pressure levels of the at least two different aqueous solutions. The injection system includes an aqueous inlet, a non-aqueous inlet, a bypass outlet, a working fluid outlet, and a loading chamber. The injection system is configured to allow for a predetermined amount of each of the at least two different aqueous solutions to be delivered to the droplet isolation device sequentially.

Claims (24)

1. A microfluidic system comprising:

a droplet isolation device including at least one isolation unit and at least one capillary valve, the isolation unit having at least one chamber configured to receive at least two different aqueous solutions, the at least one capillary valve configured to allow for the at least two different aqueous solutions to be introduced into the at least one chamber without mixing prior to entering the at least one chamber based at least in part on pressure levels of the at least two different aqueous solutions; and

an injection system including an aqueous inlet, a non-aqueous inlet, a bypass outlet including a selectively-actuated bypass valve, a working fluid outlet in fluid communication with both the droplet isolation device and a selectively-actuated downstream valve, and a loading chamber in fluid communication with each of the aqueous inlet, the non-aqueous inlet, the bypass outlet, and the working fluid outlet, the selectively-actuated bypass valve and the selectively-actuated downstream valve being configured to collectively allow for a predetermined amount of each of the at least two different aqueous solutions to be delivered to the droplet isolation device sequentially.

2. The microfluidic system of claim 1 , wherein the predetermined amount of each of the at least two different aqueous solutions is dependent on a volume of the loading chamber.

3. The microfluidic system of claim 1 , wherein the selectively-actuated bypass valve is a mechanical valve.

4. The microfluidic system of claim 1 , wherein the selectively-actuated downstream valve is a mechanical valve.

5. The microfluidic system of claim 1 , wherein the aqueous inlet includes a first loading capillary valve adjacent to the loading chamber and having a first loading pressure threshold, the non-aqueous inlet includes a second loading capillary valve adjacent to the loading chamber and having a second loading pressure threshold, and the bypass outlet includes a third loading capillary valve adjacent to the loading chamber and having a third loading pressure threshold, and the first loading pressure threshold is greater than the second loading pressure threshold, and the second loading pressure threshold is greater than the third loading pressure threshold.

6. The microfluidic system of claim 5 , wherein, when the selectively-actuated downstream valve is closed and the selectively-actuated bypass valve is opened, the loading chamber is configured to receive one of the at least two different aqueous solutions from the aqueous inlet without the one of the at least two different aqueous solutions entering the droplet isolation device.

7. The microfluidic system of claim 6 , wherein, when the loading chamber is filled with the one of the at least two different aqueous solutions and when the selectively-actuated downstream valve is opened and the selectively-actuated bypass valve is closed, the injection system is configured to inject the predetermined amount of the one of the at least two different aqueous solutions from the loading chamber into the droplet isolation device.

8. The microfluidic system of claim 1 , wherein the loading chamber has a volume of between 10 pL and 10 mL.

9. A microfluidic injection system for injecting predetermined amounts of aqueous fluid into a microfluidic device, the microfluidic injection system comprising:

an aqueous inlet;

a non-aqueous inlet;

a bypass outlet including a selectively-actuated bypass valve;

a working fluid outlet in fluid communication with the microfluidic device and a selectively-actuated downstream valve; and

a loading chamber in fluid communication with each of the aqueous inlet, the non-aqueous inlet, the bypass outlet, and the working fluid outlet,

the selectively-actuated bypass valve and the selectively-actuated downstream valve being configured to collectively allow for a predetermined amount of an aqueous solution to be delivered to the microfluidic device; and

wherein the aqueous inlet includes a first loading capillary valve adjacent to the loading chamber and having a first loading pressure threshold, the non-aqueous inlet includes a second loading capillary valve adjacent to the loading chamber and having a second loading pressure threshold, and the bypass outlet includes a third loading capillary valve adjacent to the loading chamber and having a third loading pressure threshold, and the first loading pressure threshold is greater than the second loading pressure threshold, and the second loading pressure threshold is greater than the third loading pressure threshold.

10. The microfluidic injection system of claim 9 , wherein the predetermined amount of the aqueous solution is dependent on a volume of the loading chamber.

11. The microfluidic injection system of claim 9 , wherein the selectively-actuated bypass valve is a mechanical valve.

12. The microfluidic injection system of claim 9 , wherein the selectively-actuated downstream valve is a mechanical valve.

13. The microfluidic injection system of claim 9 , wherein, when the selectively-actuated downstream valve is closed and the selectively-actuated bypass valve is opened, the loading chamber is configured to receive the aqueous solution from the aqueous inlet without the aqueous solution entering the working fluid outlet.

14. The microfluidic injection system of claim 9 , wherein, when the loading chamber is filled with the aqueous solution and when the selectively-actuated downstream valve is opened and the selectively-actuated bypass valve is closed, the microfluidic injection system is configured to inject the predetermined amount of the aqueous solution from the loading chamber into the working fluid outlet.

15. The microfluidic injection system of claim 9 , wherein the loading chamber has a volume of between 10 pL and 10 mL.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jan 4, 2024
From: BRANDEIS UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 066016/0594 →
CONFIRMATORY LICENSE Recorded Oct 25, 2022
From: BRANDEIS UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 061524/0515 →
Continuity (2)
Provisional Application 62753761 · Oct 31, 2018
Related Publication 20210394186A1 · Dec 23, 2021
References Cited (11)
US 6637463B1 · Lei · 2003 [cited by examiner]
US 11148140B2 · Fraden · 2021 [cited by examiner]
US 20020081222A1 · Karp · 2002 [cited by applicant]
US 20100252118A1 · Fraden · 2010 [cited by applicant]
US 20120196280A1 · Karlsen · 2012 [cited by applicant]
US 20180304260A1 · Thomas · 2018 [cited by examiner]
US 20200238278A1 · Fraden · 2020 [cited by applicant]
US 20230201835A1 · Youngbull · 2023 [cited by examiner]
WO 2018132831A2 · 2018 [cited by applicant]
Boukellal, et al. “Simple, robust storage of drops and fluids in a microfluidic device.” Lab on a Chip 9.2 (Oct. 28, 2008): 331-338. [cited by applicant]
International Searching Authority. International Search Report and Written Opinion for application PCT/US2019/058602. Mailed on Feb. 25, 2020. 16 pages. [cited by applicant]