C03C25/223

NANOCOMPOSITES WITH INTERLOCKING NANOSTRUCTURES
20190308905 · 2019-10-10 ·

Reinforced nanocomposite structures are described herein. Nanocomposite structures containing reinforcement fibers that are mechanically interlocked together with nanostructures are also described. Helical carbon nanotubes can be used to create high-performance multifunctional nanocomposite materials systems. Nanocomposite materials systems described also include chemically functionalized nanomaterials that are highly bent, kinked, twisted, entangled and mechanically interlocked within a resin system and/or traditional microfiber reinforcements.

OPTICAL APPARATUS AND METHODS AND COMPUTER PROGRAM PRODUCTS USEFUL FOR MANUFACTURING SAME
20240219612 · 2024-07-04 ·

Optical apparatus comprising a MEMS substrate having a surface; and a stack of optical coatings which is deposited on the MEMS substrate's surface and which modifies at least one property of light impinging on the stack.

OPTICAL APPARATUS AND METHODS AND COMPUTER PROGRAM PRODUCTS USEFUL FOR MANUFACTURING SAME
20240219612 · 2024-07-04 ·

Optical apparatus comprising a MEMS substrate having a surface; and a stack of optical coatings which is deposited on the MEMS substrate's surface and which modifies at least one property of light impinging on the stack.

OPTICAL FIBER, OPTICAL SENSOR INCLUDING OPTICAL FIBER, METHOD OF MANUFACTURING OPTICAL FIBER, AND DEPOSITION APPARATUS THEREFOR

Disclosed is an optical fiber including a plasmonic optical filter with a closed curved shape provided at, at least portion thereof. A method of manufacturing the plasmonic optical filter includes a step of exposing a core, a step of forming a thin metal film on the core through physical vapor deposition while rotating the core in a circumferential direction after changing a rotation axis of the core, and a step of patterning nanopatterns on the cylinder-shaped thin metal film using focused ion beam technique assisted with endpoint detection method. Due to such constitutions, an active area to generate an optical signal for optical sensor can be increased.

OPTICAL FIBER, OPTICAL SENSOR INCLUDING OPTICAL FIBER, METHOD OF MANUFACTURING OPTICAL FIBER, AND DEPOSITION APPARATUS THEREFOR

Disclosed is an optical fiber including a plasmonic optical filter with a closed curved shape provided at, at least portion thereof. A method of manufacturing the plasmonic optical filter includes a step of exposing a core, a step of forming a thin metal film on the core through physical vapor deposition while rotating the core in a circumferential direction after changing a rotation axis of the core, and a step of patterning nanopatterns on the cylinder-shaped thin metal film using focused ion beam technique assisted with endpoint detection method. Due to such constitutions, an active area to generate an optical signal for optical sensor can be increased.

OPTICAL APPARATUS AND METHODS AND COMPUTER PROGRAM PRODUCTS USEFUL FOR MANUFACTURING SAME
20190064402 · 2019-02-28 ·

Optical apparatus comprising a MEMS substrate having a surface; and a stack of optical coatings which is deposited on the MEMS substrate's surface and which modifies at least one property of light impinging on the stack.

OPTICAL APPARATUS AND METHODS AND COMPUTER PROGRAM PRODUCTS USEFUL FOR MANUFACTURING SAME
20190064402 · 2019-02-28 ·

Optical apparatus comprising a MEMS substrate having a surface; and a stack of optical coatings which is deposited on the MEMS substrate's surface and which modifies at least one property of light impinging on the stack.

Optical fiber, optical sensor including optical fiber, method of manufacturing optical fiber, and deposition apparatus therefor

Disclosed is an optical fiber including a plasmonic optical filter with a closed curved shape provided at, at least portion thereof. A method of manufacturing the plasmonic optical filter includes a step of exposing a core, a step of forming a thin metal film on the core through physical vapor deposition while rotating the core in a circumferential direction after changing a rotation axis of the core, and a step of patterning nanopatterns on the cylinder-shaped thin metal film using focused ion beam technique assisted with endpoint detection method. Due to such constitutions, an active area to generate an optical signal for optical sensor can be increased.

OPTICAL FIBER, OPTICAL SENSOR INCLUDING OPTICAL FIBER, METHOD OF MANUFACTURING OPTICAL FIBER, AND DEPOSITION APPARATUS THEREFOR

Disclosed is an optical fiber including a plasmonic optical filter with a closed curved shape provided at, at least portion thereof. A method of manufacturing the plasmonic optical filter includes a step of exposing a core, a step of forming a thin metal film on the core through physical vapor deposition while rotating the core in a circumferential direction after changing a rotation axis of the core, and a step of patterning nanopatterns on the cylinder-shaped thin metal film using focused ion beam technique assisted with endpoint detection method. Due to such constitutions, an active area to generate an optical signal for optical sensor can be increased.

Fibrous Core-Shell Silicon-Carbon Structures

This disclosure relates to novel lithium ion battery structures and methods of manufacture. One particular method includes a method of coating a porous glass substrate. The method includes: providing a porous glass substrate; flowing gaseous hydrocarbon onto a porous glass substrate in a reaction zone; and exposing the porous glass substrate to a concentrated solar irradiation in the reaction zone such that the porous substrate and gases surrounding the porous substrate absorb the concentrated solar irradiation producing heat. The heat chemically reduces glass fibers in the porous glass substrate into silicon fibers, and the heat decomposes the gaseous hydrocarbon into a carbon coating on the silicon fibers.