IP Library › Granted Patent US 11,141,942
Granted Patent B2
US 11,141,942 · App. 16/076,929 · Granted Oct 12, 2021

Multi-material stretchable optical, electronic and optoelectronic fibers and ribbons composites via thermal drawing

Inventors: Fabien Sorin (St-Sulpice, CH); Yunpeng Qu (Lausanne, CH); Marco Volpi (Etoy, CH); Wei Yan (Echandens-Denges, CH); Dang Tung Nguyen (Ecublens, CH); Alexis Page (Renens, CH)
Assignee: ECOLE POLYTECHNIQUE FÉDÉRALE DE LAUSANNE (EPFL)
B29D11/00721A61B90/30A61L31/022A61L31/024A61L31/048A61L31/06D01D5/00D01F1/10D01F6/30D01F6/42D01F8/04G01L1/242G02B1/045G02B6/02152H01B3/30H01B13/0013H02N1/04A61B2090/306G02B6/4403G02B6/4416
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Quick Facts
Patent No.
US 11,141,942
App. No.
16/076,929
Granted
Oct 12, 2021
Kind
B2
Abstract

The present invention concerns a thermal drawing method for forming fibers, wherein said fibers are made at least from a stretchable polymer. The present invention also concerns drawn fibers made by the process.

Claims (18)

1. A thermal drawing method for forming a fiber comprising the steps of:

providing a preform of a material for the fiber;

heating the material such that the preform necks down under its own weight and produces a lower end; and

continuously drawing a fiber from the lower end of the preform,

wherein the material includes an elastomer.

2. The method as defined in claim 1 , wherein the step of continuously drawing includes co-drawing the fiber with another material.

3. The method as defined in claim 1 , further comprising the step of:

providing an additional element to the preform before the step of continuously drawing, the additional element including at least one of a metallic electrode made of a conductive medium, a semiconducting material, an insulating material, and optical material, and a functional material.

4. The method as defined in claim 1 , further comprising the steps of:

inserting a thin metallic wire in a channel of the fiber to form an embedded electrode; and

encapsulating a connection with the embedded electrode by an adhesive to improve mechanical resistance of the connection.

5. The method as defined in claim 1 , wherein the material of the preform further includes nanoscale objects to bring functionality to the material.

6. The method as defined in claim 5 , wherein the nanoscale objects include at least one of nanoparticles and nanotubes.

7. The method as defined in claim 1 , wherein in the step of heating the material, a heating furnace provides a heating temperature to decrease the viscosity of the elastomer for deformation such that the material reaches an elastomeric phase before the preform is subjected to the step of continuously drawing.

8. The method as defined in claim 1 , wherein the material further includes a thermoplastic thereby forming a thermoplastic elastomer (TPE) that has a thermoplastic domain that physically cross-links an elastomeric phase.

9. The method as defined in claim 8 , wherein in the step of heating the material, a heating furnace provides a heating temperature to reach a softening temperature of the TPE before the preform is subjected to the step of continuously drawing.

10. The method as defined in claim 1 , further comprising the step of:

attaching the lower end of the preform to a pulling system after the step of heating the material.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 8, 2021
From: NGUYEN, DANG TUNG; PAGE, ALEXIS
To: ECOLE POLYTECHNIQUE FÉDÉRALE DE LAUSANNE (EPFL)
Reel/Frame 056467/0900 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 29, 2018
From: SORIN, FABIEN; QU, YUNPENG; VOLPI, MARCO; YAN, WEI
To: ECOLE POLYTECHNIQUE FÉDÉRALE DE LAUSANNE (EPFL)
Reel/Frame 047344/0507 →
Priority Claims (1)
EP 16155102 · Feb 10, 2016 · regional
Continuity (1)
Related Publication 20190047240A1 · Feb 14, 2019