D01F6/42

Fibers made from soluble polymers

A fiber can be made having a structure with an axial core and a coating layer. The fiber can have a polymer core and one or two layers surrounding the core. The fine fiber can be made from a polymer material and a resinous aldehyde composition such that the general structure of the fiber has a polymer core surrounded by at least a layer of the resinous aldehyde composition.

Anti-bacterial metallo ionomer polymer nanocomposite filaments and methods of making the same

A composite filament includes a core particle comprising a styrene/acrylate polymer resin, and a shell comprising a styrene/acrylate ionomer resin, wherein the styrene/acrylate ionomer resin comprises a metal ion acrylate monomer, and methods of making thereof. Various articles can be manufactured from such composite filaments.

Anti-bacterial metallo ionomer polymer nanocomposite filaments and methods of making the same

A composite filament includes a core particle comprising a styrene/acrylate polymer resin, and a shell comprising a styrene/acrylate ionomer resin, wherein the styrene/acrylate ionomer resin comprises a metal ion acrylate monomer, and methods of making thereof. Various articles can be manufactured from such composite filaments.

CONDUCTIVE ELASTOMERIC FILAMENTS AND METHOD OF MAKING SAME

A biocompatible yarn comprising a conductive elastomeric filament, the conductive elastomeric filament comprising a elastomeric polymer and conductive filler.

CONDUCTIVE ELASTOMERIC FILAMENTS AND METHOD OF MAKING SAME

A biocompatible yarn comprising a conductive elastomeric filament, the conductive elastomeric filament comprising a elastomeric polymer and conductive filler.

ELECTROSPUN CATIONIC NANOFIBERS AND METHODS OF MAKING AND USING THE SAME

Methods of making polycationic nanofibers by grafting cationic polymers onto electrospun neutral nanofibers and polycationic nanofibers produced by the methods are provided herein. In addition, methods of using the polycationic nanofibers to reduce inflammation, to adsorb anionic compounds such as heparin or nucleic acids, to inhibit the growth of microbes or inhibit the formation of a biofilm are also provided. The polycationic nanofibers may be in a mesh and may be included in a medical device, wound dressing, bandage, or as part of a graft.

ELECTROSPUN CATIONIC NANOFIBERS AND METHODS OF MAKING AND USING THE SAME

Methods of making polycationic nanofibers by grafting cationic polymers onto electrospun neutral nanofibers and polycationic nanofibers produced by the methods are provided herein. In addition, methods of using the polycationic nanofibers to reduce inflammation, to adsorb anionic compounds such as heparin or nucleic acids, to inhibit the growth of microbes or inhibit the formation of a biofilm are also provided. The polycationic nanofibers may be in a mesh and may be included in a medical device, wound dressing, bandage, or as part of a graft.

MULTI-MATERIAL STRETCHABLE OPTICAL, ELECTRONIC AND OPTOELECTRONIC FIBERS AND RIBBONS COMPOSITES VIA THERMAL DRAWING

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.

MULTI-MATERIAL STRETCHABLE OPTICAL, ELECTRONIC AND OPTOELECTRONIC FIBERS AND RIBBONS COMPOSITES VIA THERMAL DRAWING

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.

FILAMENT FOR MATERIAL EXTRUSION 3D PRINTER MOLDING AND PRODUCTION METHOD OF MOLDED BODY

The present invention provides a filament for material extrusion 3D printer molding, which affords a molded article having soft texture and excellent heat resistance and among others, exhibits good moldability in molding by a material extrusion 3D printer. The present invention relates to a filament for material extrusion 3D printer molding, including a thermoplastic elastomer which contains at least a specific block copolymer and in which the ratio between storage modulus and loss modulus measured at 200 C. and 100 Hz by dynamic viscoelasticity measurement is in a specific range.