IP Library Granted Patent US 12678743
Granted Patent B2
US 12678743 · App. 18/512,578 · Granted Jul 14, 2026

Porous medium with adjustable fluid permeability and associated systems and methods

Inventors: Yayuan Liu (Cambridge, MA); Trevor Alan Hatton (Sudbury, MA)
Assignee: Massachusetts Institute of Technology
B01D71/022B01D53/228B01D53/326B01D67/0065B01D71/0221B01D71/02232B01D71/025B01D71/0281B01D2257/504B01D2325/0283B01D2325/20B01D2325/26
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12678743
App. No.
18/512,578
Filed
Nov 17, 2023
Granted
Jul 14, 2026
Kind
B2
Art Unit
1776
USPC
95/51
Abstract

The present disclosure is related to porous media with adjustable fluid permeabilities and related systems and methods. In certain cases, the fluid permeability of a porous medium can be adjusted by applying an electrical potential to the porous medium. In some such cases, the application of the electrical potential to the porous medium results in the deposition of material over or the removal of material from the porous medium. Also disclosed herein are systems and methods for capturing species (e.g., acid gases) in which porous media with adjustable fluid permeabilities are used, for example, to control the flow of fluid into and out of a medium used to capture the species.

Claims (27)

1 . A method, comprising applying an electrical potential to an electronically conductive porous solid to adjust a fluid permeability of the electronically conductive porous solid, wherein a sequestration material is disposed adjacent to the electronically conductive porous solid.

2 . The method of claim 1 , wherein the electronically conductive porous solid has a first side and a second side, and at least one of the first side and the second side is in fluid communication with a gaseous stream.

3 . The method of claim 2 , wherein the electronically conductive porous solid comprises a metal at a side opposite of the gaseous stream.

4 . The method of claim 1 , wherein the fluid permeability of the electronically conductive porous solid is reduced when the electrical potential, having a first polarity, is applied to the electronically conductive porous solid.

5 . The method of claim 4 , wherein the application of the electrical potential, having the first polarity, results in the deposition of a material on the electronically conductive porous solid.

6 . The method of claim 5 , wherein the material deposited on the electronically conductive porous solid comprises a metal and/or a metal oxide.

7 . The method of claim 5 , wherein the material deposited on the electronically conductive porous solid comprises a colloidal particle.

8 . The method of claim 4 , wherein the fluid permeability of the electronically conductive porous solid is increased when an electrical potential, having a second polarity opposite of the first polarity, is applied to the electronically conductive porous solid.

9 . The method of claim 8 , wherein, when the electrical potential, having the second polarity, is applied to the electronically conductive porous solid, material is removed from the electronically conductive porous solid.

10 . The method of claim 1 , wherein the fluid permeability of the electronically conductive porous solid is reduced when the electrical potential, having a first polarity, is applied to the electronically conductive porous solid.

11 . The method of claim 10 , wherein the application of the electrical potential, having the first polarity, results in the deposition of a material on the electronically conductive porous solid.

12 . The method of claim 11 , wherein the material deposited on the electronically conductive porous solid comprises a metal and/or a metal oxide.

13 . The method of claim 12 , wherein the material deposited on the electronically conductive porous solid comprises a colloidal particle.

14 . The method of claim 13 , wherein the fluid permeability of the electronically conductive porous solid is increased when an electrical potential, having a second polarity opposite of the first polarity, is applied to the electronically conductive porous solid.

15 . The method of claim 14 , wherein, when the electrical potential, having the second polarity, is applied to the electronically conductive porous solid, material is removed from the electronically conductive porous solid.

16 . A method, comprising applying an electrical potential to an electronically conductive porous solid to adjust a fluid permeability of the electronically conductive porous solid, wherein:

the fluid permeability of the electronically conductive porous solid is reduced when the electrical potential, having a first polarity, is applied to the electronically conductive porous solid;

the application of the electrical potential, having the first polarity, results in deposition of a material on the electronically conductive porous solid; and

the material deposited on the electronically conductive porous solid comprises a metal and/or a metal oxide.

17 . A method, comprising applying an electrical potential to an electronically conductive porous solid to adjust a fluid permeability of the electronically conductive porous solid, wherein:

the fluid permeability of the electronically conductive porous solid is reduced when the electrical potential, having a first polarity, is applied to the electronically conductive porous solid;

the application of the electrical potential, having the first polarity, results in deposition of a material on the electronically conductive porous solid; and

the material deposited on the electronically conductive porous solid comprises a colloidal particle.

18 . A method, comprising applying an electrical potential to an electronically conductive porous solid to adjust a fluid permeability of the electronically conductive porous solid, wherein:

the fluid permeability of the electronically conductive porous solid is reduced when the electrical potential, having a first polarity, is applied to the electronically conductive porous solid;

the fluid permeability of the electronically conductive porous solid is increased when an electrical potential, having a second polarity opposite of the first polarity, is applied to the electronically conductive porous solid; and

when the electrical potential, having the second polarity, is applied to the electronically conductive porous solid, material is removed from the electronically conductive porous solid.