IP Library Granted Patent US 10,562,798
Granted Patent B2
US 10,562,798 · App. 15/612,667 · Granted Feb 18, 2020

Contaminate removal using aluminum-doped magnetic nanoparticles

Inventor: Jie Xu (Atlanta, GA)
Assignee: Georgia Tech Research Corporation
C02F1/488B01D15/02B01D15/3885C02F2101/105C02F2305/08
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Quick Facts
Patent No.
US 10,562,798
App. No.
15/612,667
Granted
Feb 18, 2020
Kind
B2
Abstract

Embodiments of the present disclosure can include a method for isolating a contaminate from water comprising: introducing a plurality of aluminum-doped nanoparticles to water, the water comprising the contaminate; contacting the plurality of aluminum-doped nanoparticles with the contaminate to form contaminate-adsorbed nanoparticles; and isolating the contaminate-adsorbed nanoparticles by applying a magnetic field to the water.

Claims (25)

1. A method comprising:

introducing aluminum-doped nanoparticles to a fluid comprising water and a contaminate selected from the group consisting of a phosphorus species, chemical oxygen demand, suspended solids, dissolved solids, a fat, an oil, a grease, and a combination thereof;

contacting at least a portion of the aluminum-doped nanoparticles with at least a portion of the contaminate to form contaminate-adsorbed nanoparticles; and

isolating at least a portion of the contaminate-adsorbed nanoparticles by applying a magnetic field to the fluid;

wherein the aluminum-doped nanoparticles are synthesized from a mixture of ferric salt, ferrous salt, and aluminum salt with sodium hydroxide, and are characterized by a maximum contaminate adsorption capacity of greater than 50 mg/g based on the Langmuir model.

2. The method of claim 1 , wherein an isolation efficiency of the contaminate-adsorbed nanoparticles is pH-independent in the range of the fluid pH from 4 to 9.

3. The method of claim 1 , wherein the aluminum-doped nanoparticles are characterized by a maximum contaminate adsorption capacity of greater than 81 mg/g based on the Langmuir model.

4. The method of claim 1 wherein the aluminum-doped nanoparticles are characterized by a maximum contaminate adsorption capacity of greater than 102 mg/g based on the Langmuir model.

5. The method of claim 1 further comprising removing at least a portion of the contaminate-adsorbed nanoparticles from the liquid.

6. The method of claim 1 further comprising synthesizing the aluminum-doped nanoparticles prior to introducing the aluminum-doped nanoparticles to the fluid.

7. The method of claim 1 , wherein the aluminum-doped nanoparticles comprise 20 to 50% aluminum.

8. The method of claim 1 , further comprising regenerating at least a portion of the aluminum-doped nanoparticles.

9. The method of claim 8 , wherein regenerating comprises contacting at least a portion of the contaminate-adsorbed nanoparticles with aluminum sulfate.

10. A method for removing phosphorus species from wastewater comprising: introducing aluminum-doped nanoparticles synthesized from a mixture of ferric salt, ferrous salt, and aluminum salt with sodium hydroxide to wastewater having a pre-removal concentration of phosphorus species, the aluminum-doped nanoparticles configured to adsorb at least a portion of the phosphorus species and form phosphorus-adsorbed nanoparticles; removing at least a portion of the phosphorus-adsorbed nanoparticles by subjecting at least a portion of the phosphorus-adsorbed nanoparticles to a magnetic field; and regenerating at least a portion of the phosphorus-adsorbed nanoparticles by precipitating them with a regeneration agent; wherein a post-removal concentration of phosphorus species of the wastewater after removal of at least a portion of the phosphorus-adsorbed nanoparticles is from between about 80 and 90% less than the pre-removal concentration of the phosphorus species of the wastewater; and wherein the aluminum-doped nanoparticles are characterized by a maximum contaminate adsorption capacity of greater than 50 mg/g based on the Langmuir model.

11. The method of claim 10 , wherein a removal efficiency of the phosphorus-adsorbed nanoparticles is pH-independent in the range of the wastewater pH from 4 to 9.

12. The method of claim 10 , wherein the phosphorous species is selected from the group consisting of an organophosphate, a polyphosphate, and a reactive phosphate.

13. The method of claim 10 further comprising synthesizing the aluminum-doped nanoparticles prior to introducing the aluminum-doped nanoparticles to the wastewater.

14. The method of claim 10 , wherein the aluminum-doped nanoparticles comprise about 20 to 50% aluminum.

15. The method of claim 10 , wherein the regeneration agent is aluminum sulfate.

16. Aluminum-phosphorus magnetic nanoparticles produced by the process comprising dissolving stoichiometric amounts of Al2(SO4)3, FeCl3, and FeCl2 in a fluid from a solution, increasing the pH of the solution with the addition of NaOH until precipitation of aluminum-doped magnetic nanoparticles; contacting the aluminum-doped magnetic nanoparticles with a phosphorus species mixture facilitating adsorption of the phosphorus species to a surface of the aluminum-doped magnetic nanoparticles forming aluminum-phosphorus magnetic nanoparticles; and isolating the aluminum-phosphorus magnetic nanoparticles by applying a magnetic field to the mixture; wherein the aluminum-phosphorus magnetic nanoparticles are characterized by a maximum contaminate adsorption capacity of greater than 50 mg/g based on the Langmuir model.

17. The aluminum-phosphorus magnetic nanoparticles of claim 16 , wherein the phosphorus species is a particulate phosphorus or soluble phosphorus; and wherein the fluid is deionized water.

18. The aluminum-phosphorus magnetic nanoparticles of claim 16 produced by the process further comprising:

heating the solution prior to increasing the pH of the solution; and

heating the solution during the addition of NaOH.

19. The method of claim 5 , wherein a contaminate concentration of the fluid after removal of at least a portion of the contaminate-absorbed nanoparticles is from about 40% to about 97% less than a contaminate concentration of the fluid prior to forming the contaminate-adsorbed nanoparticles.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 13, 2017
From: XU, JIE
To: GEORGIA TECH RESEARCH CORPORATION
Reel/Frame 043576/0490 →
Continuity (2)
Provisional Application 62345482 · Jun 3, 2016
Related Publication 20170349459A1 · Dec 7, 2017