IP Library Granted Patent US 11,414,790
Granted Patent B2
US 11,414,790 · App. 15/951,411 · Granted Aug 16, 2022

Strong and tough continuous nanofibers

Inventor: Yuris Dzenis (Lincoln, NE)
Assignee: NUtech Ventures
D01F6/18D01D1/02D01D5/003D01D5/0038D01D5/0046D01D5/0092D01D10/02D01F1/02Y10T428/298
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Quick Facts
Patent No.
US 11,414,790
App. No.
15/951,411
Granted
Aug 16, 2022
Kind
B2
Abstract

A method of fabricating a continuous nanofiber is described. The method includes preparing a solution of one or more polymers and one or more solvents and electrospinning the solution by discharging the solution through one or more liquid jets into an electric field to yield one or more continuous nanofibers. The electrospinning process (i) highly orients one or more polymer chains in the one or more continuous nanofibers along a fiber axis of the one or more continuous nanofibers, and (ii) suppresses polymer crystallization in the one or more continuous nanofibers. The one or more continuous nanofibers can have diameters below about 250 nanometers and exhibit an increase in fiber strength and modulus while maintaining strain at failure, resulting in an increase in fiber toughness.

Claims (41)

1. At least one continuous nanofiber for use in composites, the at least one continuous nanofiber prepared by a process comprising the steps of:

electrospinning a polymeric solution, the electrospinning comprising discharging, through one or more jets, the polymeric solution through an electric field to yield one or more fibers, and suppressing, during the electrospinning, crystal formation to obtain one or more continuous nanofibers composed essentially of polymer and having a diameter of below 250 nanometers, the one or more continuous nanofibers exhibiting a toughness of 500 MPa to 600 MPa, a true strength of 1500 MPa to 1700 MPa, and elastic modulus from 8 GPa to 48 GPa;

wherein suppressing crystal formation comprises disrupting formation of one or more intermolecular bonds during the electrospinning process by using one or more solvents interacting with polymer molecules, and at least one of (i) including in the polymeric solution one or more additives, or (ii) altering molecular structure of the polymer using atactic sequences or side groups, resulting in suppressing polymer crystallization in the one or more continuous nanofibers; and

wherein the polymeric solution comprises polyacrylonitrile (PAN).

2. The at least one continuous nanofiber of claim 1 , wherein the process further comprises highly orienting one or more polymer chains by decreasing a diameter of one or more of the continuous nanofibers by introducing, during the electrospinning process, one or more jet instabilities using mechanical or electromagnetic perturbations.

3. The at least one continuous nanofiber of claim 1 , wherein the process further comprises highly orienting one or more polymer chains to decrease a diameter of one or more of the continuous nanofibers by stretching one or more of the continuous nanofibers during or after performing the electrospinning.

4. The at least one continuous nanofiber as in claim 1 , wherein suppressing crystal formation comprises performing (a) polymer solidification of the fibers and (b) an evaporation of a solvent in the polymeric solution, to yield one or more continuous nanofibers.

5. A continuous nanofiber, composed essentially of polymer and generated in an electrospinning process, the continuous nanofiber having an average diameter ranging from 50 nanometers to 100 nanometers, wherein the nanofiber has strength of 1550 MPa to 1750 MPa, a fracture toughness of 500 MPa to 600 MPa, and an elastic modulus of 8 GPa to 48 GPa;

wherein the continuous nanofiber is adapted to form a sheet, a membrane, a yarn, a two dimensional assembly, a three dimensional assembly, or a coating;

wherein the polymer is polyacrylonitrile (PAN).

6. The continuous nanofiber as in claim 5 , wherein the continuous nanofiber comprises a nanoreinforcement adapted to form a composite, an adhesive, a nanoreinforced interlaminar or fiber-matrix interface, or a nano-hook-and-loop bond.

7. The continuous nanofiber of claim 5 , wherein the average diameter of the continuous nanofiber is 50 nanometers.

8. The at least one continuous nanofiber of claim 1 , wherein the process further comprises performing a liquid soaking of the one or more continuous nanofibers, the liquid soaking resulting in a disruption of crystallization.

9. The at least one continuous nanofiber of claim 1 , wherein the diameter of the one or more continuous nanofibers is 5 nanometers to 50 nanometers.

10. The at least one continuous nanofiber of claim 1 , wherein the one or more continuous nanofibers is adapted to form a sheet, a membrane, a yarn, a fabric, a two dimensional assembly or array, a three dimensional assembly or array, or a coating.

11. The at least one continuous nanofiber of claim 1 , wherein the diameter of the one or more continuous nanofibers is based at least in part on an applied electric field strength of 10 kilovolts to 12 kilovolts over a spinning distance of 5 centimeters to 40 centimeters.

12. The at least one continuous nanofiber of claim 1 , wherein the process further comprises applying one or more of heat, ultraviolet radiation, or a chemical reagent to the one or more continuous nanofibers resulting in an additional increase in fiber modulus, strength, or toughness for the one or more continuous nanofibers.

13. The at least one continuous nanofiber of claim 1 , wherein the process comprises applying ultraviolet radiation to the one or more continuous nanofibers resulting in an additional increase in fiber modulus, strength, or toughness for the one or more continuous nanofibers.

14. The at least one continuous nanofiber of claim 1 , wherein the process comprises applying a chemical reagent to the one or more continuous nanofibers resulting in an additional increase in fiber modulus, strength, or toughness for the one or more continuous nanofibers.

15. The at least one continuous nanofiber of claim 1 , wherein the one or more additives comprise plasticizers.

16. A continuous nanofiber, composed essentially of polymer and generated in an electrospinning process, the continuous nanofiber having an average diameter of 50 nanometers, wherein the nanofiber has strength of 1550 MPa to 1750 MPa, a fracture toughness of 500 MPa to 600 MPa, and an elastic modulus of 8 GPa to 48 GPa;

wherein the polymer is polyacrylonitrile (PAN).

17. The continuous nanofiber of claim 16 , wherein the electrospinning process comprises suppressing polymer crystallization by disrupting formation of one or more intermolecular bonds during the electrospinning process by using one or more solvents interacting with polymer molecules, and at least one of (i) including in the polymeric solution one or more additives, or (ii) altering molecular structure of the polymer using atactic sequences or side groups, resulting in suppressing polymer crystallization in the one or more continuous nanofibers.

18. The continuous nanofiber of claim 17 , wherein the one or more additives comprise plasticizers.

19. At least one continuous nanofiber for use in composites, the at least one continuous nanofiber prepared by a process comprising the steps of:

electrospinning a polymeric solution, the electrospinning comprising discharging, through one or more jets, the polymeric solution through an electric field to yield one or more fibers, and suppressing, during the electrospinning, crystal formation to obtain one or more continuous nanofibers composed essentially of polymer and having an average diameter in a range from 5 nanometers to 50 nanometers, the one or more continuous nanofibers exhibiting a toughness of 500 MPa to 600 MPa, a true strength of 1500 MPa to 1700 MPa, and an elastic modulus of 8 GPa to 48 GPa;

wherein the polymeric solution comprises polyacrylonitrile (PAN).

20. The at least one continuous nanofiber of claim 19 , wherein suppressing polymer crystallization comprises disrupting formation of one or more intermolecular bonds during the electrospinning process by using one or more solvents interacting with polymer molecules, and at least one of (i) including in the polymeric solution one or more additives, or (ii) altering molecular structure of the polymer using atactic sequences or side groups, resulting in suppressing polymer crystallization in the one or more continuous nanofibers.

21. The at least one continuous nanofiber of claim 20 , wherein the one or more additives comprise plasticizers.

22. A continuous nanofiber, composed essentially of polymer and generated in an electrospinning process, the continuous nanofiber having an average diameter ranging from 50 nanometers to 100 nanometers, wherein the nanofiber has strength of 1550 MPa to 1750 MPa, a fracture toughness of 500 MPa to 600 MPa, and an elastic modulus of 8 GPa to 48 GPa;

wherein the continuous nanofiber comprises a nanoreinforcement adapted to form at least one of an adhesive or a nano-hook-and-loop bond; and

wherein the polymer is polyacrylonitrile (PAN).

23. The continuous nanofiber of claim 22 , wherein the electrospinning process comprises suppressing polymer crystallization by disrupting formation of one or more intermolecular bonds during the electrospinning process by using one or more solvents interacting with polymer molecules, and at least one of (i) including in the polymeric solution one or more additives, or (ii) altering molecular structure of the polymer using atactic sequences or side groups, resulting in suppressing polymer crystallization in the one or more continuous nanofibers.

24. The at least one continuous nanofiber of claim 23 , wherein the one or more additives comprise plasticizers.

25. The continuous nanofiber of claim 1 , wherein the polymer is polyacrylonitrile (PAN).

26. The continuous nanofiber of claim 19 , wherein the polymer is polyacrylonitrile (PAN).

27. The continuous nanofiber of claim 1 , wherein the elastic modulus is about 48 GPa.

28. The continuous nanofiber of claim 5 , wherein the elastic modulus is about 48 GPa.

29. The continuous nanofiber of claim 16 , wherein the elastic modulus is about 48 GPa.

30. The continuous nanofiber of claim 19 , wherein the elastic modulus is about 48 GPa.

31. The continuous nanofiber of claim 22 , wherein the elastic modulus is about 48 GPa.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 3, 2020
From: THE BOARD OF REGENTS OF THE UNIVERSITY OF NEBRASKA
To: NUTECH VENTURES
Reel/Frame 051704/0639 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 12, 2019
From: DZENIS, YURIS
To: BOARD OF REGENTS OF THE UNIVERSITY OF NEBRASKA
Reel/Frame 050025/0480 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 12, 2019
From: BOARD OF REGENTS OF THE UNIVERSITY OF NEBRASKA
To: NUTECH VENTURES
Reel/Frame 050025/0758 →
CONFIRMATORY LICENSE Recorded Apr 27, 2018
From: UNIVERSITY OF NEBRASKA, LINCOLN
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 046035/0153 →
Continuity (4)
Division 14104930 · Dec 12, 2013
Provisional Application 61736638 · Dec 13, 2012
Provisional Application 61736044 · Dec 12, 2012
Related Publication 20180282905A1 · Oct 4, 2018