G02F2203/10

MATERIALS AND METHODS USED WITH PLASMON RESONANCE DETECTION TECHNIQUES
20220229318 · 2022-07-21 ·

Improved multilayered magneto-optic-plasmonic (“MOP”) films that are used in connection with surface plasmon detection that have a first layer comprising titanium, a second layer selected from a group consisting of gold and silver, a third layer comprising cobalt, and a fourth layer comprising gold are disclosed. In an embodiment, the film has a first titanium layer with a thickness of approximately 2 nm, a second gold layer with a thickness of 35 nm, a layer of cobalt having a thickness of approximately 8 nm and a fourth gold base layer having a thickness of approximately 10 nm.

EXCITON POLARITON OPTICAL INTERCONNECT
20210405398 · 2021-12-30 ·

An electro-optical converter that converts an electric signal to an optical signal. An optical signal is dragged from one optical channel to another optical channel using exciton polaritons that are generated in a layer that is adjacent the optical channels. The exciton polaritons are generated in response to an electrical signal which thereby results in the selective production of the optical signal.

OPTICAL MODULATING DEVICE AND OPTICAL APPARATUS EMPLOYING THE SAME

Provided is an optical modulating device including an incidence optical system, an optical modulating assembly including a plurality of nano-antennas that form a meta-grating based on a driving signal, the optical modulating assembly being configured to change a traveling direction of incidence light incident at an incidence angle from the incidence optical system based on an effective displacement of the meta-grating according to the driving signal, and an emission optical system configured to emit light steered by the optical modulating assembly, wherein the emission optical system is further configured to emit first-order diffraction light of the incidence light based on the meta-grating.

SYSTEMS AND METHODS FOR ALIGNMENT OF PHOTONIC INTEGRATED CIRCUITS AND PRINTED OPTICAL BOARDS

Example implementations described herein are directed to an interface configured to redirect light between a connector connected to a printed optical board (POB) via an optical waveguide, and a photonic integrated circuit (PIC), the interface involving two-dimensionally distributed waveplates (TDWs) having multiple layers of p-doped and n-doped silicon, the TDWs configured to be driven to change a dielectric constant at a two dimensional location on the TDWs such that the received light is redirected at the two dimensional location.

Optical modulator, method for forming the same, and method for controlling the same

According to embodiments of the present invention, an optical modulator is provided. The optical modulator includes a substrate, and a waveguiding arrangement on the substrate, the waveguiding arrangement having a waveguide, and at least one graphene layer arranged to interact with light propagating in the waveguiding arrangement, wherein the waveguide is designed such that the light interacting with the at least one graphene layer has a maximum intensity overlapping with the at least one graphene layer. According to further embodiments of the present invention, a method for forming the optical modulator, and a method for controlling the optical modulator are also provided.

INFUSION OF DRUGS
20220195291 · 2022-06-23 ·

An at least partly implantable system for injecting a substance into a patient's body. The system comprises at least one flexibly bendable infusion needle with a tip end of each of said at least one infusion needle arranged in at least one first housing for penetrating the first housing's outer wall in at least one penetration area and having the respective other end arranged in at least one second housing, the first and second housings being adapted for implantation inside the patient's body, wherein the at least one second housing is provided for implantation inside the patient's body remote from the at least one first housing and wherein the injection needle is sufficiently long to bridge the distance from the at least one second housing for remote implantation to the at least one first housing and further through the first housing up to the outer wall of the first housing. The system further comprises at least one drive unit adapted for being coupled to the at least one infusion needle and arranged at least for advancing the tip end of the at least one infusion needle so that the at least one infusion needle penetrates with the tip end or ends thereof said at least one first housing's outer wall in said at least one penetration area.

TIME-VARYING METASURFACE STRUCTURE

A time-varying optical metasurface, comprising a plurality of modulated nano-antennas configured to vary dynamically over time. The metasurface may be implemented as part of an optical isolator, wherein the time-varying metasurface provides uni-directional light flow. The metasurface allows the breakage of Lorentz reciprocity in time-reversal. The metasurface may operate in a transmission mode or a reflection mode.

TRANSPARENT CONDUCTING OXIDE (TCO) BASED INTEGRATED MODULATORS
20220179279 · 2022-06-09 ·

A photonic waveguide assembly has a photonic waveguide for transmission of light or a substrate, and an optical refractive index modulator positioned about said photonic waveguide to modulate the phase or amplitude, or combination thereof of the light traveling in the photonic waveguide, or transmitting through or reflecting of the substrate.

Optical device, method of using the same, and method of making the same

An optical device, wherein the optical device includes a dielectric layer over a mirror layer. The optical device further includes a plurality of plasmonic nanoparticles over the dielectric layer. Additionally, the optical device includes a protective layer over the plurality of plasmonic nanoparticles.

Ultra-fast optical modulation and ultra-short pulse generation based on tunable graphene-plasmonic hybrid metasurfaces

An optical device is disclosed. The optical device includes a silicon substrate, an aluminum oxide layer, an aluminum layer between the silicon substrate and the aluminum oxide layer, and a metasurface nanostructure. The metasurface nanostructure may include a graphene monolayer on the aluminum oxide layer and an electrically conductive nanoantenna array in direct contact with the graphene monolayer, where each nanoantenna in the nanoantenna array may include multiple segments, each segment having one or more parameters selected to achieve simultaneous resonance in the mid-infrared and the near infrared spectral regions when the graphene monolayer is irradiated with a near infrared pump pulse and a continuous mid-infrared probe. The optical device generates mid-infrared pulses via ultrafast modulation of hot carriers in the monolayer graphene.