IP Library › Granted Patent US 10,316,872
Granted Patent B2
US 10,316,872 · App. 14/426,544 · Granted Jun 11, 2019

Two-dimensional magnetic trap arrays for droplet control

Inventors: Manu Prakash (San Francisco, CA); Georgios Katsikis (Stanford, CA)
Assignee: The Board of Trustees of the Leland Stanford Junior University
F15D1/0075B01J19/087B01L3/502792B01L2200/0668B01L2300/0816B01L2400/043F15D1/00Y10T137/206
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Quick Facts
Patent No.
US 10,316,872
App. No.
14/426,544
Granted
Jun 11, 2019
Kind
B2
Abstract

A magnetic trap droplet controller is provided that includes a solid substrate, a controller operated by an appropriately programmed computer, a two-dimensional distribution of magnetized domains disposed on a surface of the solid substrate, a fluid chamber disposed above the two-dimensional distribution of magnetized domains, and an active magnet, where the active magnet is disposed to provide a dynamic magnetic field in-plane with the solid substrate, where the dynamic magnetic field controls north and south poles of the two-dimensional distribution of magnetized domains according to the controller, where a fluid under test that is disposed in a carrier fluid that is disposed in the fluid chamber propagates according to the controlled north and south poles of the two-dimensional distribution of the magnetized domains.

Claims (21)

1. A magnetic trap droplet controller, comprising:

a) a microfluidic plate, wherein said microfluidic plate comprises a magnetic droplet under test, wherein said magnetic droplet under test is disposed in a carrier fluid in said microfluidic plate;

b) soft magnet elements disposed in said microfluidic plate, wherein said soft magnetic elements are arranged in a two-dimensional distribution of magnetic material shapes;

c) an active magnet configured to produce a dynamic magnetic field that is external to said microfluidic plate, wherein said active magnet surrounds said solid substrate, said two-dimensional distribution of magnetic material shapes, and said microfluidic plate;

d) a controller comprising a periodic waveform generator or a switched signal generator connected to a computer having a non-transitory storage medium that is programmed to execute instructions to operate said periodic waveform generator or said switched signal generator, wherein said active magnet is controlled by said controller to produce a dynamic magnetic field, wherein a polarity of said soft magnetic elements is disposed to alternate periodically between north and south poles according to a polarity of said external dynamic magnetic field, wherein said periodic alternating polarities of said soft magnetic elements are arranged to attract and repel said magnetic droplet under test, wherein said pattern of soft magnetic elements is configured to move said magnetic droplet under test along said microfluidic plate according to said polarity of said soft magnetic elements in said two-dimensional distribution of magnetic material shapes.

2. The magnetic trap droplet controller of claim 1 , wherein said pattern of soft magnet elements comprises a distribution of magnetic material shapes having a T-shape.

3. The magnetic trap droplet controller of claim 1 , wherein said microfluidic plate comprises a volume disposed between two hydrophobic layers.

4. The magnetic trap droplet controller of claim 3 , wherein said hydrophobic layers are selected from the group consisting of Teflon, PDMS, fluorosilanes, silicon-based spray-on coating, and superhydrophobic materials.

5. The magnetic trap droplet controller of claim 3 , wherein said microfluidic plate comprises a carrier fluid, wherein said carrier fluid is a non-magnetic fluid.

6. The magnetic trap droplet controller of claim 1 , wherein said magnetic droplet under test is magnetic nanoparticles dispensed in a fluid, wherein said dynamic magnetic field controls a magnetization of said fluid under test according to said polarity of said external dynamic magnetic field.

7. The magnetic trap droplet controller of claim 6 , wherein said magnetic droplet under test comprises magnetic droplets with volumes in a range from 1 nl to 100 μl.

8. The magnetic trap droplet controller of claim 1 , wherein said microfluidic plate comprises a material selected from the group consisting of silica, SiO 2 , silicon wafer, plastic, metal and a non-magnetic solid surface.

9. The magnetic trap droplet controller of claim 1 , wherein said soft magnet elements comprise permalloy bars.

10. The magnetic trap droplet controller of claim 1 , wherein said dynamic magnetic field is a varying magnitude magnetic field.

11. The magnetic trap droplet controller of claim 1 , wherein said microfluidic plate comprises a fluid under test and a carrier fluid, wherein said carrier fluid is non-ferric and said fluid under test is ferric, or wherein said carrier fluid is ferric and said fluid under test is non-ferric.

12. The magnetic trap droplet controller of claim 1 , wherein said microfluidic plate comprises fluid guides, wherein said fluid guides are a hydrodynamic resistance inside said fluid chamber.

13. The magnetic trap droplet controller of claim 1 , wherein said microfluidic plate comprises a fluid input port and a fluid output port, wherein said magnetic droplet under test and a carrier fluid are input through said input port and output through said output port.

14. The magnetic trap droplet controller of claim 1 , wherein said pattern of said soft magnet elements are disposed to collide said magnetic droplet under test with another said droplet under test.

15. The magnetic trap droplet controller of claim 1 , wherein said dynamic magnetic field is from an external active magnet comprising a first magnetic coil pair having induction along an x-y plane (Bxy) and along a z-axis (Bz) of said magnetic trap droplet controller, a second magnetic coil pair having induction along an y-z plane (Byz) and along said z-axis (Bz) of said magnetic trap droplet controller and a magnet having a magnetic field along said y-z plane (Byz) and along said z-axis (Bz) of said magnetic trap.

16. The magnetic trap droplet controller of claim 1 , where said active magnet is disposed external to said solid substrate or said active magnetic is embedded on said solid substrate.

17. The magnetic trap droplet controller of claim 1 further comprises a micro-coil or current wire disposed above said fluid chamber and disposed to apply an external magnetic field external to said droplet controller.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 29, 2015
From: PRAKASH, MANU; KATSIKIS, GEORGIOS
To: THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITY
Reel/Frame 035744/0433 →
Continuity (2)
Provisional Application 61693346 · Aug 27, 2012
Related Publication 20150267726A1 · Sep 24, 2015