IP Library › Granted Patent US 11,009,440
Granted Patent B2
US 11,009,440 · App. 16/311,342 · Granted May 18, 2021

Microheater integrated temperature controllable microfluidic tensiometer for measuring dynamic interfacial tension

Inventors: Doojin Lee (Kunigami-gun, JP); Amy Shen Fried (Kunigami-gun, JP)
Assignee: OKINAWA INSTITUTE OF SCIENCE AND TECHNOLOGY SCHOOL CORPORATION
G01N13/02B01L3/502707B01L7/00B01L7/54B01L2300/0627B01L2300/0663B01L2300/0816B01L2300/1827G01N2013/0216
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Quick Facts
Patent No.
US 11,009,440
App. No.
16/311,342
Granted
May 18, 2021
Kind
B2
Abstract

A temperature-controllable microfluidic device includes: a microfluidic channel generally extending in a first direction for passing a specimen fluid; a microheater disposed along the microfluidic channel, the microheater being made of a resistive wire having a pair of serpentine-shaped portions generally extending in the first direction along respective sides of the microfluidic channel; and a temperature sensor disposed along the microfluidic channel, the temperature sensor being made of a resistive wire having a pair of serpentine-shaped portions generally extending in the first direction along the respective sides of the microfluidic channel.

Claims (29)

1. A temperature-controllable microfluidic device, comprising:

a microfluidic channel generally extending in a first direction for passing a specimen fluid;

a microheater disposed along the microfluidic channel, the microheater being made of a first resistive wire having a first pair of serpentine-shaped portions generally extending in the first direction along respective sides of the microfluidic channel, a portion of the first resistive wire connecting the first pair of serpentine-shaped portions at adjacent ends of the serpentine-shaped portions; and

a temperature sensor disposed along the microfluidic channel, the temperature sensor being made of a second resistive wire having a second pair of serpentine-shaped portions generally extending in the first direction along the respective sides of the microfluidic channel.

2. The temperature-controllable microfluidic device according to claim 1 , wherein said second pair of serpentine-shaped portions of the temperature sensor is disposed alongside said first pair of serpentine-shaped portions of the microheater at outer sides thereof relative to the microfluidic channel.

3. The temperature-controllable microfluidic device according to claim 1 , wherein said second pair of serpentine-shaped portions of the temperature sensor and said first pair of serpentine-shaped portions of the microheater both have a rectangular wave shape.

4. The temperature-controllable microfluidic device according to claim 1 , wherein said microheater and said temperature sensor are disposed on a glass substrate, and said microfluidic channel is defined by a patterned block disposed on the glass substrate.

5. The temperature-controllable microfluidic device according to claim 1 , wherein the microfluidic channel has a constriction portion having a width narrower than a main portion of the microfluidic channel.

6. A method of measuring temperature-dependent interfacial tensions between two liquids using a microfluidic device, said microfluidic device comprising:

a microfluidic channel generally extending in a first direction for passing a specimen fluid, microfluidic channel having a constriction portion having a width narrower than a main portion of the microfluidic channel;

a microheater disposed along the main portion of the microfluidic channel, the microheater being made of a first resistive wire having a first pair of serpentine-shaped portions generally extending in the first direction along respective sides of the main portion of the microfluidic channel, a portion of the first resistive wire connecting the first pair of serpentine-shaped portions at adjacent ends of the serpentine-shaped portions; and

a temperature sensor disposed along the main portion of the microfluidic channel, the temperature sensor being made of a second resistive wire having a second pair of serpentine-shaped portions generally extending in the first direction along the respective sides of the main portion of the microfluidic channel,

wherein the method comprises:

introducing a mixture of two liquids in the microfluidic channel so as to form a droplet of one liquid immersed in another liquid and move the droplet in the first direction;

driving the microheater and feed-back controlling and regulating temperature inside the microfluidic channel by monitoring the temperature via the temperature sensor;

imaging a deformation of the droplet as the droplet moves in the microfluidic channel using an imaging device; and

calculating an interfacial tension between the two liquids in accordance with the deformation of the droplet imaged by the imaging device.

7. The method according to claim 6 , wherein said second pair of serpentine-shaped portions of the temperature sensor is disposed alongside said first pair of serpentine-shaped portions of the microheater at outer sides thereof relative to the microfluidic channel.

8. The method according to claim 6 , wherein said second pair of serpentine-shaped portions of the temperature sensor and said first pair of serpentine-shaped portions of the microheater both have a rectangular wave shape.

9. The method according to claim 6 , wherein said microheater and said temperature sensor are disposed on a glass substrate, and said microfluidic channel is defined by a patterned block disposed on the glass substrate.

10. A temperature-controllable microfluidic tensiometer for measuring interfacial tensions between two fluids, comprising:

a microfluidic channel generally extending in a first direction for passing a specimen fluid having a droplet of one liquid immersed in another liquid, the microfluidic channel having a constriction portion having a width narrower than a main portion of the microfluidic channel;

a microheater disposed along the main portion of microfluidic channel, the microheater being made of a first resistive wire having a first pair of serpentine-shaped portions generally extending in the first direction along respective sides of the main portion of the microfluidic channel, a portion of the first resistive wire connecting the first pair of serpentine-shaped portions at adjacent ends of the serpentine-shaped portions;

a temperature sensor disposed along the main portion of the microfluidic channel, the temperature sensor being made of a second resistive wire having a second pair of serpentine-shaped portions generally extending in the first direction along the respective sides of the main portion of the microfluidic channel;

one or more controllers connected to the microheater and the temperature sensor to drive the microheater and detect temperature in the microfluidic channel via the temperature sensor, the one or more controllers feed-back controlling and regulating the temperature; and

an imaging device that takes images of the droplet as the droplet moves in the microfluidic channel.

11. The temperature-controllable microfluidic tensiometer according to claim 10 , wherein said second pair of serpentine-shaped portions of the temperature sensor is disposed alongside said first pair of serpentine-shaped portions of the microheater at outer sides thereof relative to the microfluidic channel.

12. The temperature-controllable microfluidic tensiometer according to claim 10 , wherein said second pair of serpentine-shaped portions of the temperature sensor and said first pair of serpentine-shaped portions of the microheater both have a rectangular wave shape.

13. The temperature-controllable microfluidic tensiometer according to claim 10 , wherein said microheater and said temperature sensor are disposed on a glass substrate, and said microfluidic channel is defined by a patterned block disposed on the glass substrate.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 19, 2018
From: LEE, DOOJIN; FRIED, AMY SHEN
To: OKINAWA INSTITUTE OF SCIENCE AND TECHNOLOGY SCHOOL CORPORATION
Reel/Frame 047816/0840 →
Continuity (2)
Provisional Application 62352664 · Jun 21, 2016
Related Publication 20190187034A1 · Jun 20, 2019