IP Library Granted Patent US 12,352,678
Granted Patent B2
US 12,352,678 · App. 17/938,375 · Granted Jul 8, 2025

Counting method and counting apparatus

Inventors: Rui Hiraoka (Osaka, JP); Satoshi Arimoto (Shiga, JP)
Assignee: PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO., LTD.
G01N15/06G01N15/1404G01N2015/1486
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Quick Facts
Patent No.
US 12,352,678
App. No.
17/938,375
Granted
Jul 8, 2025
Kind
B2
Abstract

A counting method includes aggregating particles in a sample by action of first-direction dielectrophoretic force, dispersing the aggregated particles by action of second-direction dielectrophoretic force, which is different from the first-direction dielectrophoretic force, capturing a dispersion image including the dispersed particles, and determining the number of particles on the basis of the dispersion image.

Claims (24)

1. A counting method comprising:

aggregating particles in a sample by applying a first alternating current having a first frequency to an electrode set, the electrode set including (i) a first electrode including a first base extending in a first direction, two first convex portions protruding from the first base in a second direction perpendicular to the first direction, and a first concave portion formed between the two first convex portions and (ii) a second electrode including a second base extending in the first direction, two second convex portions protruding from the second base in the second direction perpendicular to the first direction, and a second concave portion formed between the two second convex portions, the first electrode and the second electrode being arranged such that the two first convex portions of the first electrode face the two second convex portions of the second electrode,

wherein the applying the first alternating current having the first frequency to the electrode set causes the particles to aggregate and overlap in a space between one of the two first convex portions of the first electrode and one of the two second convex portions of the second electrode by action of a first-direction dielectrophoretic force exerted by a first electric field gradient generated by the application of the first alternating current having the first frequency to the electrode set, the one of the two first convex portions of the first electrode and the one of the two second convex portions of the second electrode facing each other,

wherein the counting method further comprises dispersing the aggregated particles by applying a second first alternating current having a second frequency to the electrode set, the second frequency being higher than the first frequency,

wherein the applying the second alternating current having the second frequency to the electrode set suppresses the overlap of the aggregated particles by dispersing aggregated particles to one of first concave portion of the first electrode or the second concave portion of the second electrode by action of a second-direction dielectrophoretic force exerted by a second electric field gradient generated by the application of the second alternating current having the second frequency to the electrode set, the second-direction dielectrophoretic force being different from the first-direction dielectrophoretic force, and

wherein the counting method further comprises:

capturing a dispersion image including the particles after being dispersed to one of first concave portion of the first electrode or the second concave portion of the second electrode by action of the second-direction dielectrophoretic force; and

determining a number of the particles on a basis of the dispersion image.

2. The counting method according to claim 1 ,

wherein the second-direction dielectrophoretic force is higher than the first-direction dielectrophoretic force.

3. The counting method according to claim 1 ,

wherein the first-direction dielectrophoretic force is either a positive dielectrophoretic force or a negative dielectrophoretic force, and the second-direction dielectrophoretic force is the other of the positive dielectrophoretic force or the negative dielectrophoretic force.

4. The counting method according to claim 1 , further comprising:

capturing an aggregation image including the aggregated particles after the aggregating but before the dispersing; and

tracking the particles included in the captured aggregation image on a basis of the aggregation image and the dispersion image.

5. The counting method according to claim 4 ,

wherein, in the tracking, whether each of the particles dispersed in the dispersing is a particle aggregated at a first position or a particle aggregated at a second position, which is different from the first position, in the aggregating is determined.

6. The counting method according to claim 4 ,

wherein, in the determining, particles containing a detection target substance, which is a certain detection target, are selectively counted among the particles on a basis of the aggregation image and the dispersion image.

7. A counting apparatus comprising:

a storage storing a sample containing particles and an electrode set including (i) a first electrode including a first base extending in a first direction, two first convex portions protruding from the first base in a second direction perpendicular to the first direction, and a first concave portion formed between the two first convex portions and (ii) a second electrode including a second base extending in the first direction, two second convex portions protruding from the second base in the second direction perpendicular to the first direction, and a second concave portion formed between the two second convex portions, the first electrode and the second electrode being arranged such that the two first convex portions of the first electrode face the two second convex portions of the second electrode;

a controller that controls a power source connected to the electrode set, the controller causing the power source to (i) apply a first alternating current having a first frequency to the electrode set causes the particles to aggregate and overlap in a space between one of the two first convex portions of the first electrode and one of the two second convex portions of the second electrode by action of a first-direction dielectrophoretic force exerted by a first electric field gradient generated by the application of the first alternating current having the first frequency to the electrode set, the one of the two first convex portions of the first electrode and the one of the two second convex portions of the second electrode facing each other, and (ii) apply a second alternating current having a second frequency to the electrode set to suppress the overlap of the aggregated particles by dispersing aggregated particles to one of first concave portion of the first electrode or the second concave portion of the second electrode by action of a second-direction dielectrophoretic force exerted by a second electric field gradient generated by the application of the second alternating current having the second frequency to the electrode set, the second-direction dielectrophoretic force being different from the first-direction dielectrophoretic force;

an imager that captures a dispersion image including the particles after being dispersed to one of first concave portion of the first electrode or the second concave portion of the second electrode by action of the second-direction dielectrophoretic force; and

a counter that determines a number of the particles on a basis of the dispersion image.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 10, 2023
From: HIRAOKA, RUI; ARIMOTO, SATOSHI
To: PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO., LTD.
Reel/Frame 062319/0693 →
Priority Claims (1)
JP 2020-078982 · Apr 28, 2020 · national
Continuity (2)
Continuation PCTJP2021013180 · Mar 29, 2021
Related Publication 20230028960A1 · Jan 26, 2023
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