摘要:
An alignment connector for an optoelectronic module can include: a front end having a first gripper arm and a second gripper arm with an alignment connector aperture between the first gripper arm and the second gripper arm; a base having a bottom surface and a receptacle surface; the back end having a first back wall and a second back wall with a back gap therebetween; and a ferrule receptacle extending to a medial region where the alignment connector aperture extends from, and including a portion of the receptacle surface, the ferrule receptacle being defined by a first side wall having a first latch arm and a second side wall having a second latch arm. The alignment connector can be included in a module with a bail or pull-tab. Alternatively, the first gripper arm and second gripper arm can be mounted directly to a module housing.
摘要:
The optical-electrical printed circuit board disclosed herein includes a waveguide link assembly and a printed circuit board assembly. The printed circuit board assembly has first and second PCB layers between which optical waveguides of the waveguide link assembly are disposed. The end faces the optical waveguides are accessible through an access aperture in the printed circuit board assembly. An optical interconnector can be used to optically connect the optical waveguides to waveguides of an optical-electrical integrated circuit operably disposed on the printed circuit board assembly to form a photonic device. A waveguide bending structure can be used to bend the optical waveguides to facilitate optical coupling to the optical interconnector or directly to the waveguides of the optical-electrical integrated circuit. Methods of forming an optical-electrical printed circuit board, a photonic assembly and a photonic device are also disclosed.
摘要:
A traceable cable assembly includes a traceable cable having at least one data transmission element, a jacket at least partially surrounding the data transmission element, and first and second tracing optical fibers extending along at least a portion of a length of the traceable cable. The traceable cable assembly also includes a connector provided at each end of the traceable cable. The first and second tracing optical fibers each have a light launch end and a light emission end. The light launch ends of the first and second tracing optical fibers each include a bend. The bend allows for launching of light into the light launch ends without disengaging the first or second connectors from corresponding connector receptacles.
摘要:
A system for interfacing a ferrule with a socket includes a socket, a cover to optically couple a ferrule to the socket, and a gasket interposed between the cover and the ferrule. The gasket applies a compression force against the ferrule to secure the ferrule to the socket.
摘要:
An optical device includes an optical bench and two flip-chip bonded optical chips. The optical bench includes a large area slab waveguide structure having an input facet facing the first optical chip, an output facet facing the second optical chip, and one or more curved facet which reflects the slab mode light such that the input optical mode coupled through the input facet diverges in the slab waveguide plane as it propagates, reflects at the curved facets, and focuses to an output optical mode at the output facet with mode size larger than the input optical mode in the in-plane direction. During fabrication, after the first optical chip is flip-chip bonded, the location of the focused output optical mode on the output facet is determined, and then the second optical chip is flip-chip bonded based on the determined location of the output optical mode.
摘要:
Optical circuit board assemblies having one or more lens bodies are disclosed. In one embodiment, the assembly comprises a composite circuit board comprising a glass-substrate and a non-glass substrate with the non-glass substrate having at least one cutout that exposes a portion of the glass substrate and at least one optical trace comprising one or more optical interfaces on the composite circuit board. The one or more optical interfaces of the composite circuit board are in optical communication with the one or more lens bodies. Other optical circuit board assemblies may include other features such as a bezel mount attached to the composite circuit board or an attachment structure secured to the composite circuit board.
摘要:
A multilayer PCB (160) for optical transmission is presented. The multilayer PCB includes a first layer (1510), a second layer (1520), and a transparent layer (212) between them. The transparent layer may have a first compartment (1851), which may have a first mirror (214) operable to reflect a beam of light (260B) into the first compartment of the transparent layer in a plurality of directions (260C) perpendicular to the direction of the beam of light, thereby transmitting throughout the first compartment an optical signal carried by the beam of light in said plurality of directions such that one or more other mirrors disposed in the first compartment of the transparent layer are able to receive a beam of reflected light (260C) carrying the optical signal. The multilayer PCB may further include a second mirror (1508) in the first compartment for reflecting a wave of reflected light (260C) carrying the optical signal toward an optical receiver (1705).
摘要:
An improved waveguide is disclosed. The waveguide comprises four or five layers, an inner core polymer, one or two layers of outer cladding polymer either on one side of the core of sandwiching the inner core polymer, and two layers of a dielectric reflector sandwiching the outer cladding polymer. The refractive index of the inner core polymer is greater than that of the outer cladding polymer. Further, the refractive index of the outer cladding polymer is greater than that of the dielectric reflector. Further, the waveguide can be used to create a physically unclonable function. A light source and an image sensor may be disposed on a printed circuit board. The waveguide may be disposed on the printed circuit board so that light emitted from the light source traverses the waveguide before reaching the image sensor.