IP Library › Granted Patent US 11,771,784
Granted Patent B2
US 11,771,784 · App. 16/326,187 · Granted Oct 3, 2023

Material, device, and method for deactivating pathogen in aerosol, and methods for manufacturing thereof

Inventor: Hyo-Jick Choi (Edmonton, CA)
A61L2/232A41D13/1192A61L9/16B01D46/0028A61L2209/14A61L2209/16A61L2209/21B01D2279/50B01D2279/65
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Quick Facts
Patent No.
US 11,771,784
App. No.
16/326,187
Granted
Oct 3, 2023
Kind
B2
Abstract

A pathogen-deactivating fibrous material is coated with salt crystals or salt crystal layer. The salt crystals or coating on the supporting fibrous material layer dissolves upon exposure to pathogenic aerosols and recrystallizes during evaporation of water from the pathogenic aerosols. Recrystallization of the salt deactivates pathogens. The pathogen-deactivating fibrous material can be used in a sanitizing fabric, an air filtering device, such as respiratory devices, masks, furnace filter devices, air conditioning device, vehicle cabin filter device, etc., and can provide a universal personal protection for preventing infections.

Claims (20)

1. A material for deactivating a pathogenic aerosol, comprising:

a supporting fibrous layer; and

a salt crystal disposed on the supporting fibrous layer, wherein the salt crystal is a coating layer which partially or completely cover the supporting fibrous layer and the salt crystal includes one or more of sodium, potassium, chloride, magnesium, sulfate, ammonium, phosphate, glutamate, tartrate, and their ions,

wherein the amount of the salt crystals disposed on the supporting fibrous layer is from 3.011 mg/cm 2 to 18.611 mg/cm 2 , and the material has an air filtration efficiency of at least 5%.

2. The material of claim 1 , wherein the supporting fibrous layer includes a hydrophobic material.

3. The material of claim 1 , wherein the supporting fibrous layer includes a hydrophilic material.

4. The material of claim 1 , wherein the salt crystal is configured to absorb a pathogenic aerosol, including the pathogen on to the supporting fibrous layer of claim 1 .

5. An air filter device, comprising the material of claim 1 .

6. The air filter device of claim 5 , which is configured to be worn as a mask for covering a wearer's nose and mouth, wherein the mask comprises a facemask and ear straps connected to the facemask, the facemask is configured to cover the wearer's nose and mouth, and the ear straps are configured to wrap around the wearer's ears to support a position of the facemask.

7. The air filter device of claim 5 , which is configured to be a respirator device, wherein the respirator device has a face piece, two filter cartridges disposed on the face piece, and a head strap connected to the face piece; the face piece is configured to cover a wearer's nose and mouth, and the head strap is configured to wrap around the wearer's head to support a position of the face piece.

8. The air filter device of claim 5 , which is configured to be an air filter device, wherein the air filter device comprises a frame for retaining one or more layer(s) of filter material(s), and wherein the air filter device comprises a vehicle cabin air filter device, a furnace air filter device or an air conditioner filter device.

9. A sanitary device, comprising the material of claim 1 .

10. The sanitary device of claim 9 , which is configured to be used as a sanitizing fabric device, wherein the sanitizing fabric device comprises a salt coating on a fiber surface.

11. A decontamination garment, comprising the material of claim 1 .

12. A method for manufacturing the material of claim 1 , comprising:

coating the supporting fibrous layer with a salt-coating solution to obtain a salt coated fibrous layer, wherein the salt-coating solution is coated at a salt concentration sufficient to dissolve upon contact with the pathogenic aerosol, thereby increasing electrostatic interaction and osmotic pressure of the plurality of pathogens in the pathogenic aerosol and causing evaporation of water from the pathogenic aerosol, and the salt crystals are further configured to recrystallize the salt dissolved by the pathogenic aerosol and deactivates the plurality of pathogens from the pathogenic aerosol; and

drying the salt coated fibrous layer,

wherein the salt-coating solution includes one or more of a salt, a surfactant, an additive, and an excipient.

13. The method of claim 12 , wherein the coating step includes spray coating the supporting fibrous layer with the salt-coating solution.

14. The material of claim 1 , wherein a surface of the supporting fibrous layer coated with the salt crystal is configured to be hydrophilic.

Continuity (2)
Provisional Application 62377209 · Aug 19, 2016
Related Publication 20200179547A1 · Jun 11, 2020