IP Library Granted Patent US 12,497,311
Granted Patent B2
US 12,497,311 · App. 17/055,017 · Granted Dec 16, 2025

Bio-electrochemical sensor, system, and method for optimizing performance of a water or wastewater treatment system

Inventors: Colin Ragush (Halifax, CA); Jack Ambler (Conshocken, PA); Patrick Desmond Kiely (Gatineau, CA)
Assignee: SENTRY: WATER MONITORING AND CONTROL INC.
C02F3/006C02F3/12C12N1/20C12N1/36C12Q1/02G01N27/327G01N33/1866C02F2209/36
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Quick Facts
Patent No.
US 12,497,311
App. No.
17/055,017
Granted
Dec 16, 2025
Kind
B2
Abstract

The present disclosure relates to a sensor for monitoring metabolic activity of a population of exo-electrogenic bacteria in response to one or more agents in oxygenated water or wastewater in a water or wastewater treatment system. The sensor comprises: at least one electrode pair comprising an anode and a cathode, the anode in electrical communication with the exo-electrogenic bacteria for receiving electrons therefrom; a current sensor for measuring electron flow between the anode and the cathode and producing an electrical output that correlates with metabolic activity of the exo-electrogenic bacteria; and a power source in electrical communication with the electrode pair for delivering a voltage across the electrode pair. A method, system, and exo-electrogenic bacteria used for monitoring and/or controlling one or more agents in oxygenated water or wastewater is also provided.

Claims (32)

1 . A bio-electrochemical sensor for monitoring metabolic activity of a population of aero-tolerant exo-electrogenic bacteria in response to one or more agents in oxygenated water or oxygenated wastewater in a water or wastewater treatment system, the sensor comprising:

at least one electrode pair comprising an anode and a cathode, the anode having a biofilm comprising two or more layers formed thereon, wherein each of the layers of the biofilm comprises aero-tolerant exo-electrogenic bacteria, wherein the anode is in electrical communication with the aero-tolerant exo-electrogenic bacteria for receiving electrons therefrom,

a current sensor for measuring electron flow between the anode and the cathode and producing an electrical output that correlates with metabolic activity of the aero-tolerant exo-electrogenic bacteria; and

a power source in electrical communication with the electrode pair for delivering a voltage of from about 0.1V to about 1.5V across the electrode pair.

2 . The bio-electrochemical sensor of claim 1 , wherein the aero-tolerant exo-electrogenic bacteria comprise at least one cytochrome that enables at least one electron to transfer extracellular to the electrically conductive surface and not to the oxygenated environment.

3 . The bio-electrochemical sensor of claim 1 , wherein the one or more agents is: 1) oxygen; 2) organic matter; 3) an organic carbon compound; 4) a cleaning agent; 5) sodium hypochlorite; 6) peracetic acid; 7) citric acid; or 8) any combination thereof.

4 . The bio-electrochemical sensor of claim 1 , wherein the oxygenated water or oxygenated wastewater is: 1) an influent water or wastewater stream, and wherein the bio-electrochemical sensor is positionable within the influent water or wastewater stream; 2) an effluent water or wastewater stream, and wherein the bio-electrochemical sensor is positionable within the effluent water or wastewater stream; or 3) a combination thereof.

5 . The bio-electrochemical sensor of claim 1 , wherein the two or more layers has a thickness of from about 0.2 mm to about 5.0 mm from the surface of the anode.

6 . A system for monitoring and/or delivering one or more agents in oxygenated water or oxygenated wastewater in a water or wastewater treatment system, the system comprising:

an aerobic chamber;

a bio-electrochemical sensor for monitoring metabolic activity of a population of aero-tolerant exo-electrogenic bacteria and providing an electrical output corresponding with the metabolic activity, the bio-electrochemical sensor comprising:

at least one electrode pair, each electrode pair comprising an anode and a cathode located within the aerobic chamber, the anode having a biofilm comprising two or more layers formed thereon, wherein each of the layers of the biofilm comprises aero-tolerant exo-electrogenic bacteria,

a power source for delivering a voltage of from about 0.1V to about 1.5V across the electrode pair; and

an electrical output analyzer for analyzing the electrical output and correlating the electrical output with the one or more agents in the water or wastewater treatment system; and

optionally a pump operably coupled to the electric output analyzer for controlling the delivery of the one or more agents.

7 . The system of claim 6 , wherein the aero-tolerant exo-electrogenic bacteria comprise at least one cytochrome that enables at least one electron to transfer extracellular to the electrically conductive surface and not to the oxygenated environment.

8 . The system of claim 6 , wherein the one or more agents is: 1) oxygen; 2) organic matter; 3) an organic carbon compound; 4) a cleaning agent; 5) sodium hypochlorite; 6) peracetic acid; 7) citric acid; or 8) any combination thereof.

9 . The system of claim 6 , wherein the oxygenated water or oxygenated wastewater is: 1) an influent water or wastewater stream, and wherein the bio-electrochemical sensor is positionable within the influent water or wastewater stream; 2) an effluent water or wastewater stream, and wherein the bio-electrochemical sensor is positionable within the effluent water or wastewater stream; or 3) a combination thereof.

10 . The system of claim 6 , wherein the system further comprises a heater operably coupled to the electric output analyzer for controlling the amount of thermal energy delivery to the oxygenated water or oxygenated wastewater.

11 . The system of claim 6 , wherein the two or more layers has a thickness of from about 0.2 mm to about 5.0 mm from the surface of the anode.

12 . A method of monitoring one or more agents in oxygenated water or oxygenated wastewater in a water or wastewater treatment system, the method comprising:

applying a voltage of from about 0.1V to about 1.5V to a bio-electrochemical sensor comprising: at least one electrode pair comprising an anode and a cathode, the anode having a biofilm comprising two or more layers formed thereon, wherein each of the layers of the biofilm comprises aero-tolerant exo-electrogenic bacteria;

measuring an electrical output of the bio-electrochemical sensor and correlating the output with the one or more agents in the water or wastewater treatment system.

13 . The method of claim 12 , wherein the aero-tolerant exo-electrogenic bacteria comprise at least one cytochrome that enables at least one electron to transfer extracellular to the electrically conductive surface and not to the oxygenated environment.

14 . The method of claim 12 , further comprising controlling the delivery of the one or more agents in the oxygenated water or oxygenated wastewater in a water or wastewater treatment system, the method further comprising:

delivering the one or more agents into the system;

monitoring a change in the electrical output in response to the one or more agents; and

adjusting the delivery of the one or more agents in response to a change in the electrical output.

15 . The method of claim 12 , wherein the oxygenated water or oxygenated wastewater is: 1) an influent water or wastewater stream; 2) an effluent water or wastewater stream; or 3) a combination thereof.

16 . The method of claim 12 , wherein the one or more agents is: 1) oxygen; 2) organic matter; 3) an organic carbon compound; 4) a cleaning agent; 5) sodium hypochlorite; 6) peracetic acid; 7) citric acid; or 8) any combination thereof.

17 . The method of claim 12 , wherein the method further comprises adjusting a heater to control the amount of thermal energy delivery to the oxygenated water or wastewater in response to a change in the electrical output beyond a threshold.

18 . The method of claim 12 , wherein the two or more layers has a thickness of from about 0.2 mm to about 5.0 mm from the surface of the anode.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 23, 2022
From: RAGUSH, COLIN; AMBLER, JACK; KIELY, PATRICK DESMOND
To: ISLAND WATER TECHNOLOGIES INC.
Reel/Frame 059076/0413 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 3, 2022
From: ISLAND WATER TECHNOLOGIES INC.
To: SENTRY: WATER MONITORING AND CONTROL INC.
Reel/Frame 058877/0287 →
Continuity (2)
Provisional Application 62679626 · Jun 1, 2018
Related Publication 20210214251A1 · Jul 15, 2021
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