H01S5/068

Bonded Tunable VCSEL with Bi-Directional Actuation
20230051091 · 2023-02-16 ·

A MEMS tunable VCSEL includes a membrane device having a mirror and a distal-side electrostatic cavity for displacing the mirror to increase a size of an optical cavity. A VCSEL device includes an active region for amplifying light. Then, one or more proximal-side electrostatic cavities are defined between the VCSEL device and the membrane device and used to displace the mirror to decrease a size of an optical cavity.

Bonded Tunable VCSEL with Bi-Directional Actuation
20230051091 · 2023-02-16 ·

A MEMS tunable VCSEL includes a membrane device having a mirror and a distal-side electrostatic cavity for displacing the mirror to increase a size of an optical cavity. A VCSEL device includes an active region for amplifying light. Then, one or more proximal-side electrostatic cavities are defined between the VCSEL device and the membrane device and used to displace the mirror to decrease a size of an optical cavity.

Multiple optoelectronic devices with thermal compensation

An optical apparatus comprising at least two optoelectronic devices fabricated on the same substrate and in thermal communication with each other. A first optoelectronic device is configured to generate optical signals and provide them to an optical system via an optical output port. A second optoelectronic device is configured to provide heat compensation for the first optoelectronic device. An electrical circuitry provides first electrical signals to the first optoelectronic device and second electrical signals to the second optoelectronic device. The electrical circuitry is configured to adjust at least the second electrical signals to controllably adjust a temperature of the first optoelectronic device.

Multiple optoelectronic devices with thermal compensation

An optical apparatus comprising at least two optoelectronic devices fabricated on the same substrate and in thermal communication with each other. A first optoelectronic device is configured to generate optical signals and provide them to an optical system via an optical output port. A second optoelectronic device is configured to provide heat compensation for the first optoelectronic device. An electrical circuitry provides first electrical signals to the first optoelectronic device and second electrical signals to the second optoelectronic device. The electrical circuitry is configured to adjust at least the second electrical signals to controllably adjust a temperature of the first optoelectronic device.

Detector system comparing pixel response with photonic energy decay

Methods and apparatus for a controlling a stimulus source to direct photons to a pixel in a pixel array contained in a detector system, analyzing a response of the pixel in the pixel array; and generating an alert based on the response of the pixel in the pixel array. Example stimulus sources include a conductive trace, a PN junction, and a current source.

LASER TEMPERATURE STABILISATION
20230010890 · 2023-01-12 ·

A system comprising a laser 1001 for illuminating a sample S under investigation, a temperature sensor 1019 for sensing the operating temperature of the laser 1001 and generating an output which is indicative of the sensed temperature, a temperature stabilisation device 1018 for controlling the operating temperature of the laser 1001, and a controller 1012 for determining a target operating temperature or temperature range for the laser based on the output of the temperature sensor 1019 and for controlling the temperature stabilisation device 1018 to drive the operating temperature of the laser 1001 towards the target operating temperature or temperature range.

LASER TEMPERATURE STABILISATION
20230010890 · 2023-01-12 ·

A system comprising a laser 1001 for illuminating a sample S under investigation, a temperature sensor 1019 for sensing the operating temperature of the laser 1001 and generating an output which is indicative of the sensed temperature, a temperature stabilisation device 1018 for controlling the operating temperature of the laser 1001, and a controller 1012 for determining a target operating temperature or temperature range for the laser based on the output of the temperature sensor 1019 and for controlling the temperature stabilisation device 1018 to drive the operating temperature of the laser 1001 towards the target operating temperature or temperature range.

Integrated laser source

Integrated laser sources emitting multi-wavelengths of light with reduced thermal transients and crosstalk and methods for operating thereof are disclosed. The integrated laser sources can include one or more heaters and a temperature control system to maintain a total thermal load of the gain segment, the heater(s), or both of a given laser to be within a range based on a predetermined target value. The system can include electrical circuitry configured to distribute current to the gain segment, the heater(s), or both. The heater(s) can be located proximate to the gain segment, and the distribution of current can be based on the relative locations. In some examples, the central laser can be heated prior to being activated. In some examples, one or more of the plurality of lasers can operate in a subthreshold operation mode when the laser is not lasing to minimize thermal perturbations to proximate lasers.

TRANSIENT WAVELENGTH DRIFT REDUCTION IN SEMICONDUCTOR LASERS

This application relates to a laser assembly displaying self-heating mitigation. The laser assembly comprises a semiconductor laser and a drive unit for driving the semiconductor laser. The semiconductor laser includes a first semiconductor region for generating or modulating an optical signal in response to a first drive current that is applied to the first semiconductor region, and a heating region that is arranged in proximity to the first semiconductor region and electrically insulated from the first semiconductor region. The drive unit is configured to generate the first drive current and a second drive current, apply the first drive current to the first semiconductor region during respective transmission periods of the semiconductor laser, and apply the second drive current to the heating region in intervals between successive transmission periods.

METHOD OF EVALUATING INITIAL PARAMETERS AND TARGET VALUES FOR FEEDBACK CONTROL LOOP OF WAVELENGTH TUNABLE SYSTEM
20180013264 · 2018-01-11 ·

A method of determining initial parameters and target values for tuning an emission wavelength of a wavelength tunable laser capable of emitting laser light in a substantial wavelength range is disclosed. The method iterates an evaluation of initial parameters and target values at target wavelengths in a preset order. The evaluation includes steps of supplying empirically obtained parameters to the t-LD, confirming whether the t-LD generates an optical beams, determining the initial parameters and the target values by carrying out feedback loops of the AFC and the APC when the t-LD generates the optical beam, or shifting the wavelength range so as to exclude the current target wavelength when the t-LD generates no optical beam.