IP Library Granted Patent US 11,260,586
Granted Patent B2
US 11,260,586 · App. 15/816,964 · Granted Mar 1, 2022

Multimaterial 3d-printing with functional fiber

Inventors: Yoel Fink (Brookline, MA); Gabriel Zi Jie Loke (Cambridge, MA); Rodger Yuan (Boston, MA)
Assignee: Massachusetts Institute of Technology
B29C64/209B29C64/118B29C70/88B33Y10/00B33Y30/00B33Y80/00G01K7/16H01B7/0233H01B7/0275H01B13/0016H01B13/14H01L31/0203H01L31/032H01L41/0533H01L41/23H01M10/058H05B33/04H05B33/10H05K5/065B29K2101/12B29K2827/18B29K2905/12B29K2995/0005B29K2995/0013B29L2031/34B29L2031/3468H01M4/386H01M4/387H01M4/505H01M4/525H01M4/587H01M4/5825
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 11,260,586
App. No.
15/816,964
Granted
Mar 1, 2022
Kind
B2
Abstract

In a method for printing a three dimensional structure, a continuous length of fiber that includes, interior to a surface of the fiber, a plurality of different materials arranged as an in-fiber functional domain, with at least two electrical conductors disposed in the functional domain in electrical contact with at least one functional domain material, is dispensed through a single heated nozzle. After sections of the length of fiber are dispensed from the heated nozzle, the sections are fused together in an arrangement of a three dimensional structure. The structure can thereby include a continuous length of fiber of least three different materials arranged as an in-fiber functional device, with the continuous length of fiber disposed as a plurality of fiber sections that are each in a state of material fusion with another fiber section in a spatial arrangement of the structure.

Claims (67)

1. A structure comprising:

a continuous length of fiber;

said continuous length of fiber including:

an interior functional domain comprising a plurality of different materials, the different materials arranged as at least one in-fiber functional component, and at least two electrical conductors, each electrical conductor disposed in electrical contact with a material in the functional domain;

a cladding material encapsulating said at least one in-fiber functional component and said electrical conductors, along said continuous length of fiber, the cladding material having a cladding glass transition temperature; and

a fusion domain circumferentially surrounding the encapsulated interior functional domain and comprising a polymer fusion domain material different than said cladding material and having a fusion domain glass transition temperature, said cladding glass transition temperature being at least about 50° C. greater than said fusion domain glass transition temperature and said polymer fusion domain material having a 3D-print critical temperature, T crit , above which polymer chains of the polymer fusion domain material interdiffuse, said 3D-print critical temperature, T crit , being less than said cladding glass transition temperature; and

said continuous length of fiber being disposed as a plurality of fiber sections in a spatial arrangement in which said fusion domain of each said fiber section is in a state of material fusion having polymer chain interdiffusion with said fusion domain of another said fiber section.

2. The structure of claim 1 wherein said continuous length of fiber comprises at least three different materials and wherein said fusion domain comprises a Cyclic Olefin Copolymer (COC).

3. The structure of claim 1 further comprising external electrical connections to said electrical conductors.

4. The structure of claim 1 wherein each of said at least two electrical conductors comprise a conducting material selected from copper, tungsten, gold, silver, tin, aluminium, cadmium-copper, zirconium-copper, nickel-copper, a tin-lead alloy, electrically conducting polyethylene, and electrically conducting polycarbonate.

5. The structure of claim 1 wherein said continuous length of fiber comprises at least one semiconducting material.

6. The structure of claim 1 wherein said continuous length of fiber comprises at least one semiconducting material selected from the group consisting of silicon and germanium.

7. The structure of claim 1 wherein said spatial arrangement comprises said plurality of fiber sections arranged as structural walls.

8. The structure of claim 1 wherein said spatial arrangement comprises said plurality of fiber sections arranged as a bulk structural material.

9. The structure of claim 1 wherein said spatial arrangement comprises a layered stack of a plurality of fiber sections.

10. The structure of claim 1 wherein said spatial arrangement comprises a layered stack of a plurality of fiber sections disposed as structural walls.

11. A structure comprising:

a continuous length of fiber;

said continuous length of fiber comprising:

a plurality of different materials, including an inorganic microelectronic material, arranged as an in-fiber functional domain comprising a sequence of discrete pixels, and at least two electrical conductors, each electrical conductor disposed in electrical contact with a material in the functional domain;

a cladding material encapsulating said sequence of discrete pixels and said electrical conductors, along said continuous length of fiber, the cladding material having a cladding glass transition temperature; and

a fusion domain circumferentially surrounding the encapsulated interior functional domain and comprising a polymer fusion domain material different than said cladding material and having a fusion domain glass transition temperature, said cladding glass transition temperature being at least about 50° C. greater than said fusion domain glass transition temperature and said polymer fusion domain material having a 3D-print critical temperature, T crit , above which polymer chains of the polymer fusion domain material interdiffuse, said 3D-print critical temperature, T crit , being less than said cladding glass transition temperature; and

said continuous length of fiber being disposed as a plurality of fiber sections in a non-planar spatial arrangement in which each said fiber section is in a state of material fusion having polymer chain interdiffusion with another said fiber section.

12. The structure of claim 1 wherein said at least one in-fiber functional component comprises a sequence of spatially separated functional sensing elements and wherein said spatial arrangement comprises spatially separated functional sensing elements.

13. The structure of claim 1 wherein said continuous length of fiber includes a sequence of spatially separated functional particles and wherein said spatial arrangement comprises spatially separated particles.

14. The structure of claim 1 wherein said continuous length of fiber includes a light emitting in-fiber functional domain along the continuous length of fiber, and wherein said spatial arrangement comprises at least one light emitting path.

15. The structure of claim 1 wherein said continuous length of fiber includes an electroluminescent in-fiber domain along the continuous length of fiber, and wherein said spatial arrangement comprises an electroluminescent display.

16. The structure of claim 15 wherein said electroluminescent domain includes a phosphor material selected from the group consisting of Cu-doped ZnS, yittrium aluminium garnet (YAG), manganese, aluminium, doped zinc-cadmium-sulphide (ZnCdS), and doped zinc-cadmium-sulfur-selenide (ZnCdSSe).

17. A structure comprising:

a continuous length of fiber;

said continuous length of fiber comprising:

a plurality of different materials arranged as an in-fiber functional domain along the continuous length of fiber, and at least two electrical conductors, each electrical conductor disposed in electrical contact with a material in the functional domain;

said functional domain arranged as an electrical battery in-fiber domain along the continuous length of fiber, said electrical battery in-fiber domain including an anode material selected from Li 2 TiO 3 , lithium, a tin-based metal alloy, graphite, and silicon nanoparticles, a cathode material selected from LiMn 2 O 4 , LiTi 2 O 4 , LiV 2 O 4 , and LiFePO 4 , and an ionically conductive porous polymer domain separating the anode material from the cathode material within the functional domain;

a cladding material encapsulating said functional domain along said continuous length of fiber, the cladding material having a cladding glass transition temperature; and

a fusion domain circumferentially surrounding the encapsulated interior functional domain and comprising a polymer fusion domain material different than said cladding material and having a fusion domain glass transition temperature, said cladding glass transition temperature being at least about 50° C. greater than said fusion domain glass transition temperature and said polymer fusion domain material having a 3D-print critical temperature, T crit , above which polymer chains of the polymer fusion domain material interdiffuse, said 3D-print critical temperature, T crit , being less than said cladding glass transition temperature; and

said continuous length of fiber being disposed as a plurality of fiber sections in a spatial arrangement in which each said fiber section is in a state of material fusion having polymer chain interdiffusion with another fiber section, said spatial arrangement having an electrical power output.

18. A structure comprising:

a continuous length of fiber;

said continuous length of fiber comprising:

a plurality of different materials arranged as an in-fiber functional domain along the continuous length of fiber, and at least two electrical conductors, each electrical conductor disposed in electrical contact with a material in the functional domain;

said functional domain arranged as an in-fiber piezoresistive domain along the continuous length of fiber, said piezoresistive in-fiber domain comprising piezoelectric poly(vinylidene fluoride); and

a cladding material encapsulating said functional domain along said continuous length of fiber, the cladding material having a cladding glass transition temperature; and

a fusion domain circumferentially surrounding the encapsulated interior functional domain and comprising a polymer fusion domain material different than said cladding material and having a fusion domain glass transition temperature, said cladding glass transition temperature being at least about 50° C. greater than said fusion domain glass transition temperature and said polymer fusion domain material having a 3D-print critical temperature, T crit , above which polymer chains of the polymer fusion domain material interdiffuse, said 3D-print critical temperature, T crit , being less than said cladding glass transition temperature; and

said continuous length of fiber being disposed as a plurality of fiber sections in a piezoelectric spatial arrangement in which each said fiber section is in a state of material fusion having polymer chain interdiffusion with another said fiber section.

19. The structure of claim 1 wherein said continuous length of fiber includes at least one in-fiber functional domain operative to respond to external contact of a surface region of said fiber, and wherein said spatial arrangement is operative to respond to external contact of said arrangement.

20. The structure of claim 1 wherein said continuous length of fiber comprises an in-fiber functional domain including a temperature-sensitive material that is in electrical contact with at least one of said at least two electrical conductors; and wherein said spatial arrangement comprises an external electrical contact to said at least one of said two electrical conductors.

21. A structure comprising:

a continuous length of fiber;

said continuous length of fiber comprising:

a plurality of different materials arranged as an in-fiber functional domain, and at least two electrical conductors, each electrical conductor disposed in electrical contact with a material in the functional domain; said functional domain of the continuous length of fiber including a plurality of separated spheres, each sphere in electrical contact with at least one of said electrical conductors;

a cladding material encapsulating said functional domain, the cladding material having a cladding glass transition temperature; and

a fusion domain circumferentially surrounding the encapsulated interior functional domain and comprising a polymer fusion domain material different than said cladding material and having a fusion domain glass transition temperature, said cladding glass transition temperature being at least about 50° C. greater than said fusion domain glass transition temperature and said polymer fusion domain material having a 3D-print critical temperature, T crit , above which polymer chains of the polymer fusion domain material interdiffuse, said 3D-print critical temperature, T crit , being less than said cladding glass transition temperature; and

said continuous length of fiber being disposed as a plurality of fiber sections in a spatial arrangement in which each said fiber section is in a state of material fusion having polymer chain interdiffusion with another said fiber section, said spatial arrangement including a plurality of separated spheres, wherein each of said spheres comprises a sphere of at least one of a metal and a semiconductor.

22. The structure of claim 1 wherein said functional domain includes a photodetecting material in electrical contact with at least one of said electrical conductors; and wherein said spatial arrangement comprises an external electrical contact to at least one of said electrical conductors.

23. The structure of claim 22 wherein said functional domain including a photodetecting material includes a chalcogenide semiconducting material.

24. The structure of claim 1 wherein said functional domain includes a chemically-sensitive material in electrical contact with at least one of said electrical conductors; and wherein said spatial arrangement comprises an external electrical contact to at least one of said electrical conductors.

25. The structure of claim 1 wherein said cladding material along said continuous length of fiber comprises a thermoplastic polymer material.

26. The structure of claim 25 wherein said thermoplastic polymer material comprises a material selected from polycarbonate (PC), acrylonitrile butadiene styrene (ABS), polylactic acid (PLA), Polysulfone (PSU), Polyetherimide (PEI), Polyethylene terephthalate (PET), Polystyrene (PS), Polyvinyl Alcohol (PVA), Nylon, Polyethersulfone (PES), and a thermoplastic elastomer.

27. A filament comprising:

a continuous length of fiber;

said continuous length of fiber including an interior functional domain comprising at least three different materials arranged as at least one in-fiber functional component, and at least two electrical conductors, each electrical conductor disposed in electrical contact with a material in the functional domain along said continuous length of fiber;

a cladding material encapsulating said at least one in-fiber functional component and said electrical conductors, along said continuous length of fiber, the cladding material having a cladding glass transition temperature;

a polymer fusion domain circumferentially surrounding the encapsulated interior functional domain and comprising a fusion domain material different than said cladding material and having a fusion domain glass transition temperature; and

wherein said cladding glass transition temperature is at least about 50° C. greater than said fusion domain glass transition temperature and said polymer fusion domain material has a 3D-print critical temperature, T crit , above which polymer chains of the polymer fusion domain material interdiffuse, said 3D-print critical temperature, T crit , being less than said cladding glass transition temperature.

28. The filament of claim 27 wherein said fusion domain is substantially circular in cross-section and said functional domain is substantially non-circular in cross-section.

29. The filament of claim 27 wherein said fusion domain material comprises a Cyclic Olefin Copolymer (COC).

30. The filament of claim 27 wherein said fusion domain is discontinuous along said length of fiber.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 21, 2019
From: FINK, YOEL; LOKE, GABRIEL ZI JIE; YUAN, RODGER
To: MASSACHUSETTS INSTITUTE OF TECHNOLOGY
Reel/Frame 051074/0948 →
CONFIRMATORY LICENSE Recorded Jun 8, 2018
From: MASSACHUSETTS INSTITUTE OF TECHNOLOGY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 046331/0836 →
Continuity (2)
Provisional Application 62423825 · Nov 18, 2016
Related Publication 20180141274A1 · May 24, 2018
Cited By (2)
US 12,605,891 US 12,655,548