Printed structure comprising aligned carbon nanotubes for electromagnetic interference (EMI) shielding
View Patent ↗An electromagnetic interference (EMI) shielding material comprises a freestanding printed structure including aligned single-walled carbon nanotubes, wherein an alignment direction of the aligned single-walled carbon nanotubes coincides with a parallel direction of the freestanding printed structure, and wherein a property of the freestanding printed structure measured along the parallel direction is at least about 1.5 times as high as the property measured along a perpendicular direction of the freestanding printed structure.
1 . An electromagnetic interference (EMI) shielding material comprising:
a freestanding printed structure including aligned single-walled carbon nanotubes,
wherein an alignment direction of the aligned single-walled carbon nanotubes coincides with a parallel direction of the freestanding printed structure, and
wherein a property of the freestanding printed structure measured along the parallel direction is at least about 1.5 times as high as the property measured along a perpendicular direction of the freestanding printed structure,
wherein the aligned single-walled carbon nanotubes account for at least about 70% of a total mass of the freestanding printed structure.
2 . The EMI shielding material of claim 1 , wherein the property is selected from the group consisting of thermal conductivity, electrical conductivity, and mechanical strength.
3 . The EMI shielding material of claim 2 , wherein the thermal conductivity measured along the parallel direction is at least about 3 times as high as the thermal conductivity measured along the perpendicular direction.
4 . The EMI shielding material of claim 2 , wherein the electrical conductivity measured along the parallel direction is at least about 2 times as high as the electrical conductivity measured along the perpendicular direction.
5 . The EMI shielding material of claim 2 , wherein the mechanical strength measured along the parallel direction is at least about 2 times as high as the mechanical strength measured along the perpendicular direction.
6 . The EMI shielding material of claim 1 , wherein the freestanding printed structure has a thickness-specific shielding effectiveness (SE/d) of at least about 12,000 dB/mm.
7 . The EMI shielding material of claim 6 , wherein the SE/d is as high as about 26,000 dB/mm.
8 . The EMI shielding material of claim 1 , wherein the printed freestanding structure comprises a normalized specific shielding effectiveness (SSE) of at least about 37,000 dB·cm 2 /g.
9 . The EMI shielding material of 8 , wherein the SSE is as high as about 233,000 dB·cm 2 /g.
10 . The EMI shielding material of claim 1 , wherein a shielding effectiveness (SE) of the printed freestanding structure is substantially unchanged before and after exposure to:
10,000-cycle bending or rolling tests;
acid, alkali, or acetone immersion treatments; and/or
−196° C. or 400° C. temperature treatments.
11 . The EMI shielding material of claim 1 , wherein the freestanding printed structure has a thickness in a range from about 1.5 micron to about 55 microns.
12 . The EMI shielding material of claim 1 , wherein the freestanding printed structure has a density of about 0.6 g/cm 3 or less.
13 . The EMI shielding material of claim 1 , wherein at least about 30% of the aligned single-walled carbon nanotubes are metallic.
14 . The EMI shielding material of claim 1 , wherein the aligned single-walled carbon nanotubes are oriented within about +/−10 degrees of the parallel direction.
15 . The EMI shielding material of claim 1 , wherein the aligned single-walled carbon nanotubes have an average length in a range from about 3 microns to about 10 microns.
16 . The EMI shielding material of claim 1 , wherein the aligned single-walled carbon nanotubes account for at least about 80% of the total mass of the freestanding printed structure.
17 . A method of making an EMI shielding material, the method comprising:
continuously injecting a carbon material solution comprising single-walled carbon nanotubes through a nozzle into a coagulation liquid and moving the nozzle relative to a substrate submerged in the coagulation liquid, thereby forming an extruded filament comprising the single-walled carbon nanotubes and aligning the carbon nanotubes along an axis of the extruded filament;
depositing the extruded filament onto the substrate as the nozzle is moved along a print path, thereby forming a printed structure comprising the single-walled carbon nanotubes aligned along the print path; and
after deposition, removing the printed structure from the substrate, thereby forming a freestanding printed structure comprising aligned single-wall carbon nanotubes, wherein a property of the freestanding printed structure measured along the parallel direction is at least about 1.5 times as high as the property measured along a perpendicular direction of the freestanding printed structure, and wherein the aligned single-walled carbon nanotubes account for at least about 70% of a total mass of the freestanding printed structure.
18 . The method of claim 17 , wherein the coagulation liquid comprises an organic solvent.
19 . The method of claim 17 , wherein the carbon material solution comprises a concentration of the single-walled carbon nanotubes in a range from about 1 mg/ml to about 5 mg/ml.
20 . The method of claim 17 , wherein removing the printed structure from the substrate comprises peeling the printed structure from the substrate.