G02B6/422

Retro Reflector and Associated Methods

A grating coupler reflector (retro reflector) is formed within a photonics chip and includes a vertical scattering region, an optical waveguide, and a reflector. The optical waveguide is optically coupled to the vertical scattering region. The reflector is positioned at an end of the optical waveguide. The reflector is configured to reflect light that propagates through the optical waveguide from the vertical scattering region back toward the vertical scattering region. The location of the grating coupler reflector on the photonics chip is determinable by scanning a light emitting active optical fiber over the chip and detecting when light is reflected back into the active optical fiber from the grating coupler reflector. The determined location of the grating coupler reflector on the photonics chip is usable as a reference location for aligning optical fiber(s) to corresponding optical grating couplers on the photonics chip.

OPTOELECTRONIC DEVICE WITH A SUPPORT MEMBER

Optoelectronic devices with a support member and methods of manufacturing or assembling the same are provided. An example of an optoelectronic device according to the present disclosure includes a substrate and an optical component and an electronic component disposed thereon or therein. The optoelectronic device further includes a ferrule coupled to the optical fiber and an optical socket receiving the ferrule therein. The optoelectronic device includes a support member disposed between the substrate and the optical socket such that the optical socket is spaced from the substrate by the support member.

DEMOUNTABLE EDGE COUPLERS WITH MICRO-MIRROR OPTICAL BENCH FOR PHOTONIC INTEGRATED CIRCUITS
20200124798 · 2020-04-23 ·

An edge coupler having an optical bench with a mirror array. Each mirror bends, reflects and/or reshapes incident light. The edge coupler is optically coupled to the optical elements in a PIC chip which direct light to the edge of the PIC chip. The edge coupler provides a demountable, passively aligned coupling between an optical fiber array and the PIC chip. The edge coupler may be a free space edge coupler without any optical element between the mirror array and the optical elements of the PIC chip, or may include grooves each receiving a section of optical fiber with its longitudinal axis along the first light path and terminating substantially at or extending beyond the edge of the edge coupler. The optical fiber array may include an optical fiber connector terminating and supporting the ends of the optical fibers in optical alignment with the mirror array of the edge coupler.

DEMOUNTABLE CONNECTION OF AN OPTICAL CONNECTOR AND AN OPTICAL BENCH BASED CONNECTOR USING AN ALIGNMENT COUPLER
20200124804 · 2020-04-23 ·

An alignment coupler is provided to facilitate active alignment of the optical bench to the optical connector. The optical bench and the coupler together form an optical bench based connector. A method of demountable connection of an optical connector to an optical bench based connector, comprising: providing a coupler, wherein the coupler has an opening sized to receive an optical bench with clearance for relative movement between the optical bench and the coupler to facilitate alignment, and wherein the coupler is provided with a passive alignment structure structured to demountably couple to the connector; demountably coupling the coupler to the connector; placing the optical bench in the opening of the coupler; actively aligning the optical path between the optical bench and the connector to reach a desired optical alignment between the optical bench and the connector, by adjusting a position of the optical bench within the clearance of the opening of the coupler; fixing the position of the optical bench relative to the coupler at the desired optical alignment, whereby the optical bench is optically aligned to the connector using the coupler, thereby allowing subsequent demountable coupling of the optical bench to the connector by demountable coupling of the coupler.

Optical alignment of an optical subassembly to an optoelectronic device

Optical alignment of optical subassembly and optoelectronic device is achieved using an external source and an external receiver, passing optical signal through a passive waveguide in the optoelectronic device, via alignment reflective surface features provided on the optical subassembly. The optical subassembly is provided with a first alignment reflective surface directing alignment signal from the source to a grating coupler at the input of the waveguide, and a second alignment reflective surface directing to the receiver the alignment signal directed from a grating coupler at the output of the waveguide after the alignment signal has been transmitted from the input to the output through the waveguide. By adjusting the relative position between the optical subassembly and the optoelectronic device, and detecting the maximum optical power of the alignment signal reflected from the second alignment reflective surface, the position of best optical alignment of the optical subassembly and the optoelectronic device can be determined.

Method And System For Optical Alignment To A Silicon Photonically-Enabled Integrated Circuit
20200083959 · 2020-03-12 ·

Methods and systems for optical alignment to a silicon photonically-enabled integrated circuit may include aligning an optical assembly to a photonics die comprising a transceiver by, at least, communicating optical signals from the optical assembly into a plurality of grating couplers in the photonics die, communicating the one or more optical signals from the plurality of grating couplers to optical taps, with each tap having a first output coupled to the transceiver and a second output coupled to a corresponding output grating coupler, and monitoring an output optical signal communicated out of said photonic chip via said output grating couplers. The monitored output optical signal may be maximized by adjusting a position of the optical assembly. The optical assembly may include an optical source assembly comprising one or more lasers or the optical assembly may comprise a fiber array. Such a fiber array may include single mode optical fibers.

Dynamic photonic waveguide splitter/coupler
10557990 · 2020-02-11 · ·

In one embodiment, an apparatus includes a first channel core in communication with a second channel core and a third channel core of a photonic waveguide, a splitter/coupler module movable relative to the channel cores to dynamically adjust a ratio of optical signals at two of the channel cores of the photonic waveguide, and an actuation device operable to move the splitter/coupler module based on input received during operation of the photonic waveguide.

PHOTONIC INPUT/OUTPUT COUPLER ALIGNMENT
20200033538 · 2020-01-30 ·

Optical alignment of an optical connector to input/output couplers of a photonic integrated circuit can be achieved by first actively aligning the optical connector successively to two loopback alignment features formed in the photonic chip of the PIC, optically unconnected to the PIC, and then moving the optical connector, based on precise knowledge of the positions of the loopback alignment features relative to the input/output couplers of the PIC, to a position aligned with the input/output couplers of the PIC and locking it in place.

Passive fiber coupler with UV windows

Embodiments herein describe a fiber array unit (FAU) configured to couple a photonic chip with a plurality of optical fibers. Epoxy can be used to bond the FAU to the photonic chip. However, curing the epoxy between the FAU and the photonic chip is difficult. As such, the FAU can include one or more optical windows etched into a non-transparent layer that overlap with epoxy wells in the photonic chip. Moreover, the FAU may include a transparent substrate on which the non-transparent layer is disposed that permits UV light to pass therethrough. As such, during curing, UV light can be pass through the transparent substrate and through the optical windows in the non-transparent layer to cure the epoxy disposed between the FAU and the photonic chip.

Photonic input/output coupler alignment

Optical alignment of an optical connector to input/output couplers of a photonic integrated circuit can be achieved by first actively aligning the optical connector successively to two loopback alignment features formed in the photonic chip of the PIC, optically unconnected to the PIC, and then moving the optical connector, based on precise knowledge of the positions of the loopback alignment features relative to the input/output couplers of the PIC, to a position aligned with the input/output couplers of the PIC and locking it in place.