IP Library Granted Patent US 12,233,434
Granted Patent B2
US 12,233,434 · App. 18/136,106 · Granted Feb 25, 2025

Rapid mercury-free photochemical microencapsulation/nanoencapsulation at ambient conditions

Inventors: Jamal Kurdi (Doha, QA); Mohammed Farid (Auckland, NZ)
Assignees: UNIVERSITY OF DOHA FOR SCIENCE AND TECHNOLOGY; AUCKLAND UNISERVICES LIMITED
B05D3/067A61K9/5089B01J13/16B82Y40/00
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Quick Facts
Patent No.
US 12,233,434
App. No.
18/136,106
Granted
Feb 25, 2025
Kind
B2
Abstract

A method of mercury-free photochemical micro-/nano-encapsulation of an active material is a process for obtaining micro-/nano-capsules by means of curing by UV LED radiation at ambient or even cold temperatures. A stirrer photo-reactor made from glass or transparent plastics can be used but mixed flow reactor could be also employed. Appropriate mixing is sufficient to expose all droplets, which contain an active material surrounded by curable-shell materials in the emulsion to the LED radiation. Using the optimum light intensities and reactions' times is critical for encapsulating the active material with a high efficiency and producing a high quality micro-/nano-capsules, Solar monochromator device can also be used as long as it generate the same radiation with a narrow/single wavelengths as the LED device. Light emitted diode (LED) is a mercury-free UV radiation source with a long operating life time and an instant ON-Off. it has a high efficiency, a very low cooling requirements and cost-efficient in photochemical encapsulation. It reduces the time of microencapsulation from 6 hours to a less than 5 minutes. It has a significant decrease in manufacturing cost, waste-water, unconverted monomers, and leftover active phase change material (PCM) compared to other methods. Conversion of more than 90% of monomers can be achieved, and encapsulation efficiency can reach 100% at optimum conditions. This is in addition to the ability of this invented technology for encapsulate volatile and heat sensitive active materials at ambient as well as low temperatures. Normal glass or transparent plastics can be used as a reactor material. Only the matched useful wavelength radiation is emitted by LED without having other wavelengths which might have a bad impact on the encapsulation process.

Claims (16)

1. An LED stirrer photoreactor for the photochemical microencapsulation or nanoencapsulation of a phase change active material with a curable material at an ambient or cold temperature for five minutes or less wherein the curable material comprises a mono-functional monomer and wherein the photoreactor comprises:

(a) a transparent tube equipped with a helix stirrer that can be fit inside the tube; and

(b) at least one LED lamp with adjustable light intensities.

2. The photoreactor of claim 1 , further comprising a light reflector.

3. The photoreactor of claim 1 , comprising more than one LED light.

4. The photoreactor of claim 3 , wherein each LED light has a different light wavelength.

5. The photoreactor of claim 3 , wherein each LED light has a similar light wavelength.

6. The photoreactor of claim 3 , wherein each LED light has a different light intensity.

7. The photoreactor of claim 3 , comprising two LED lamps wherein each has a wavelength of 365 nm and a radiation intensity of 0.6 W/cm 2 .

8. The photoreactor of claim 3 , comprising two LED lamps wherein each has a wavelength of 365 nm and a radiation intensity of 1.2 W/cm 2 .

9. The photoreactor of claim 1 , wherein the curable material further comprises a second mono-functional monomer or a di-, tri-, or poly-functional monomer.

10. The photoreactor of claim 1 , wherein the transparent tube is rounded or square.

11. The photoreactor of claim 1 , wherein the transparent tube is plastic or glass.

12. The photoreactor of claim 11 , wherein the transparent tube is glass and is 3.5 cm in diameter.

13. The photoreactor of claim 1 , for the microencapsulation or nanoencapsulation at an ambient or cold temperature for five minutes.

14. The photoreactor of claim 1 , for the microencapsulation or nanoencapsulation at an ambient or cold temperature for less than five.

Assignments (4)
CHANGE OF NAME Recorded Jan 10, 2025
From: UNIVERSITY OF AUCKLAND
To: AUCKLAND UNISERVICES LIMITED
Reel/Frame 069812/0759 →
CHANGE OF NAME Recorded Jan 10, 2025
From: COLLEGE OF THE NORTH ATLANTIC IN QATAR
To: UNIVERSITY OF DOHA FOR SCIENCE & TECHNOLOGY
Reel/Frame 069869/0151 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 4, 2024
From: KURDI, JAMAL
To: COLLEGE OF THE NORTH ATLANTIC IN QATAR
Reel/Frame 069128/0942 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 4, 2024
From: FARID, MOHAMMED MEHDI
To: UNIVERSITY OF AUCKLAND IN NEW ZEALAND
Reel/Frame 069129/0010 →
Continuity (4)
Division 17714874 · Apr 6, 2022
Continuation PCTIB2020059540 · Oct 11, 2020
Provisional Application 62914149 · Oct 11, 2019
Related Publication 20230364638A1 · Nov 16, 2023
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