IP Library Granted Patent US 12,528,080
Granted Patent B2
US 12,528,080 · App. 17/818,759 · Granted Jan 20, 2026

Electrical sensing, tracking, and actuation of droplets

Inventors: Nicholas Watkins (Brentwood, CA); N. Reginald Beer (Pleasanton, CA); Melinda Simon (Fremont, CA)
Assignee: Lawrence Livermore National Security, LLC
B01L3/50273B01L3/5025B01J19/0093
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Quick Facts
Patent No.
US 12,528,080
App. No.
17/818,759
Granted
Jan 20, 2026
Kind
B2
Abstract

Devices, techniques, and processes are disclosed that use electrical impedance to detect of the presence and contents of droplets including cells, nucleic acids, proteins, or solute concentrations in an array of retrievable, trackable, trapped droplets in a fluidic system. Electrodes may be positioned underneath individual droplet traps in a microchannel to assay droplet contents and/or actuating droplets for the release of the droplets from corresponding traps. The disclosed technology may be used for detection of the results of solvent extraction processes including time-dependent quantification of metal ion concentration in the aqueous and organic phases, for wastewater treatment, heavy metal detection, pharmaceutical industry, and/or biotechnology, or for environmental monitoring of wastewater for toxic metal, monitoring of biological cell viability and proliferation, monitoring of extraction processes used in heavy metal mining, monitoring of extraction processes used in nuclear fuel processing, monitoring kinetics of enzyme processes, and/or assessing pharmacodynamics and drug efficacy.

Claims (30)

1 . A method for determining a droplet's characteristic in a microfluidic device, the method comprising:

providing an electrical signal at one or more predetermined frequencies to a first electrode of the microfluidic device, the first electrode positioned within a microfluidic channel configured to allow fluid including one or more droplets to pass through the microfluidic channel;

sensing electrical signals from at least a second electrode of the microfluidic device, the second electrode positioned within the microfluidic channel and configured to produce an electrical signal upon making physical contact with, or upon being in close proximity to, a first droplet;

obtaining at least one impedance value based on the sensed electrical signals; and

determining at least one characteristic of the first droplet based on the at least one impedance value, wherein the microfluidic device comprises a plurality of traps and the first and the second electrodes are part of a first trap of the plurality of traps, each trap configured to arrest a movement of a droplet that makes physical contact with the trap, and wherein obtaining the at least one impedance value comprises actuating at least the first trap to determine the at least one impedance value of the trapped first droplet.

2 . The method of claim 1 , wherein the at least one characteristic includes one of a size or a content of the droplet.

3 . The method of claim 2 , comprising:

providing the electrical signal at a first frequency and determining one of the size or the content of the first droplet based on the at least one impedance value obtained at the first frequency, and

providing the electrical signal at a second frequency and determining the other of the size or the content of the first droplet based on the at least one impedance value obtained at the second frequency.

4 . The method of claim 1 , wherein the first and the second electrode are part of a first set of electrodes, and the method further comprises:

allowing the first droplet to travel through the microfluidic channel to reach a second set of electrodes, and

obtaining at least one additional impedance value from electrical signals sensed from the second set of electrodes, wherein:

determining the at least one characteristic of the first droplet includes determining an extraction associated with the first droplet based on impedance changes in the at least one additional impedance value obtained based on electrical signals sensed at the second set of electrodes compared to the at least one impedance value obtained based on electrical signals sensed at the first set of electrodes.

5 . The method of claim 4 , wherein:

the impedance changes caused by changes in a resistance value are indicative of extraction of ions,

the impedance changes caused by changes in a capacitance value are indicative of extraction of dipoles, and

the impedance changes caused by changes in an inductance value are indicative of extraction of metals.

6 . The method of claim 1 , wherein:

the first and the second electrode are part of a first set of electrodes,

the first set of electrodes further includes a third electrode, and

obtaining the at least one impedance value includes obtaining one or both of: an impedance value between the second electrode and the first electrode, or an impedance value between the third electrode and the second electrode.

7 . The method of claim 4 , wherein each of the first and the second set of electrodes include at least three electrodes.

8 . The method of claim 1 , wherein obtaining the at least one impedance value includes obtaining one or more of: a magnitude, a phase, a value of a real component or a value of an imaginary component of the at least one impedance value.

9 . The method of claim 1 , further comprising de-actuating at least the first trap to release the trapped droplet.

10 . The method of claim 1 , comprising, for each trap, providing the electrical signal at one or more frequencies, and allowing the trapped droplet to make physical contact with or become close in proximity to be electrically detected by at least two electrodes in each trap.

11 . The method of claim 1 , wherein the plurality of traps includes a plurality of rows and columns, and a plurality of droplets that flow through the microfluidic channel are intercepted by the plurality of traps.

12 . The method of claim 1 , comprising selectively actuating or de-actuating any one of the plurality of traps.

13 . The method of claim 1 , comprising using a demultiplexer to selectively control one or more of the plurality of traps.

14 . The method of claim 1 , comprising releasing the trapped droplet in response to an alternating current (AC) or direct current (DC) electric signal.

15 . The method of claim 1 , obtaining the at least one impedance value includes obtaining one or more of a magnitude, a phase, a value of a real component or a value of an imaginary component of the at least one impedance value.

Assignments (2)
CONFIRMATORY LICENSE (SEE DOCUMENT FOR DETAILS) Recorded Sep 29, 2022
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 061570/0018 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 10, 2022
From: WATKINS, NICHOLAS; BEER, N. REGINALD; SIMON, MELINDA
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 060767/0082 →
Continuity (2)
Division 16150059 · Oct 2, 2018
Related Publication 20230021292A1 · Jan 19, 2023
References Cited (20)
US 2656508A · Coulter · 1953 [cited by applicant]
US 9376713B2 · Bashir et al. · 2016 [cited by applicant]
Accardo, Angelo, et al. “A combined ElectroWetting On Dielectrics superhydrophobic platform based on silicon micro-structured pillars.” Microelectronic engineering 98 (2012): 651-654. [cited by applicant]
Ambrico, M. et al., “Highly Sensitive and Practical Detection of Plant Viruses via Electrical Impedance of Droplets on Textured Silicon-Based Devices,” Sensors, vol. 16, No. 11, p. 1946, 2016. [cited by applicant]
Chen, Nai-Chin, et al., “Single-cell trapping and impedance measurement utilizing dielectrophoresis in a parallel-plate microfluidic device,” Sensors and Actuators B: Chemical, 190, pp. 570-577, 2014. [cited by applicant]
Coulter, W. H., “High speed automatic blood cell counter and size analyzer,” Proc Natl Electron Conf. pp. 1034-1040, 1956. [cited by applicant]
Elbuken, C. et al., “Detection of microdroplet size and speed using capacitive sensors,” Sensors Actuators, A Phys., vol. 171, No. 2, pp. 55-62, 2011. [cited by applicant]
Gawad, Shady, Laurent Schild, and P. H. Renaud. “Micromachined impedance spectroscopy flow cytometer for cell analysis and particle sizing.” Lab on a Chip 1.1 (2001): 76-82. [cited by applicant]
Holmes, D., et al., “Leukocyte analysis and differentiation using high speed microfluidic single cell impedance cytometry,” Lab Chip, vol. 9, No. 20, pp. 2881-2889, 2009. [cited by applicant]
Kemna, E. et al., “Label-free, high-throughput, electrical detection of cells in droplets.,” Analyst, vol. 138, No. 16, pp. 4585-4592, 2013. [cited by applicant]
Lauterborn, W., “High-speed photography of laser-induced breakdown in liquids,” Appl. Phys. Lett., vol. 21, No. 1, pp. 27-29, 1972. [cited by applicant]
Marcali, M. et al., “2016 Impedimetric detection and lumped element modelling of hemagglutination assay in microdroplets,” Lab Chip, vol. 16, pp. 1-14, 2016. [cited by applicant]
Moiseeva, E. et al., “Thin-film electrode based droplet detection for microfluidic systems,” Sensors Actuators, B Chem., vol. 155, No. 1, pp. 408-414, 2011. [cited by applicant]
Nejad, H. Rezaei, et al. “Characterization of the geometry of negative dielectrophoresis traps for particle immobilization in digital microfluidic platforms.” Lab on a Chip 13.9 (2013): 1823-1830. [cited by applicant]
Sadeghi, S. et al., “On chip droplet characterization: A practical, high-sensitivity measurement of droplet impedance in digital microfluidics,” Anal. Chem., vol. 84, No. 4, pp. 1915-1923, 2012. [cited by applicant]
Simon, M. et al., “Label-Free Detection of Dna Amplification in Droplets Using Electrical Impedance,” in 15th International Conference on Miniaturized Systems for Chemistry and Life Sciences, 2011, pp. 1683-1685. [cited by applicant]
Sun, T., et al., “Single-colloidal particle impedance spectroscopy: Complete equivalent circuit analysis of polyelectrolyte microcapsules,” Langmuir, vol. 26, No. 6, pp. 3821-3828, 2010. [cited by applicant]
Wu, T. et al., “Pulsed laser triggered high speed microfluidic fluorescence activated cell sorter,” Proc. IEEE Int. Conf. Micro Electro Mech. Syst., pp. 1097-1100, 2012. [cited by applicant]
Yesiloz, G., et al., “Label-free high-throughput detection and content sensing of individual droplets in microfluidic systems,” Lab Chip, vol. 15, No. 20, pp. 4008-4019, 2015. [cited by applicant]
Mcdonald, J. Cooper, et al., “Poly (dimethylsiloxane) as a Material for Fabricating Microfluidic Devices”, Accounts of Chemical Research, 35(7):491-499, Apr. 2002, Apr. 2002, 491-499. [cited by applicant]