Patent classifications
H01S5/34386
SEMICONDUCTOR LASER ELEMENT AND METHOD OF PRODUCING SEMICONDUCTOR LASER ELEMENT
[Object] To provide a semiconductor laser element capable of preventing current leakage in junction-down mounting and a method of producing the semiconductor laser element.
[Solving Means] A semiconductor laser element according to the present technology includes: a stacked body. The stacked body includes a substrate, an n-type semiconductor layer that is formed on the substrate, is formed of an n-type semiconductor material, and has a core that is a defect concentration region, an active layer that is formed on the n-type semiconductor layer, and a p-type semiconductor layer that is formed on the active layer and is formed of a p-type semiconductor material, and has a recessed portion formed from a surface of the p-type semiconductor layer to have a depth reaching the core and an ion implantation region that is formed by implanting ions into a region including the core.
Magnesium based gettering regions for gallium and nitrogen containing laser diode devices
In an example, the present invention provides a gallium and nitrogen containing laser diode device. The device has a gallium and nitrogen containing substrate material comprising a surface region, which is configured on either a ({10-10}) crystal orientation or a {10-10} crystal orientation configured with an offcut at an angle toward or away from the [0001] direction. The device also has a GaN region formed overlying the surface region, an active region formed overlying the surface region, and a gettering region comprising a magnesium species overlying the surface region. The device has a p-type cladding region comprising an (InAl)GaN material doped with a plurality of magnesium species formed overlying the active region.
LASER EMITTER INCLUDING NANOWIRES
A laser emitter is provided, including a substrate and a dielectric mask layer located proximate to and above the substrate in a thickness direction. The dielectric mask layer may have a plurality of trenches formed therein. The plurality of trenches may have a plurality of different respective widths. The laser emitter may further include a respective nanowire located within each trench of the plurality of trenches. Each nanowire may include a first semiconductor layer located above the substrate in the thickness direction. Each nanowire may further include a quantum well layer located proximate to and above the first semiconductor layer in the thickness direction. Each nanowire may further include a second semiconductor layer located proximate to and above the quantum well layer in the thickness direction.
LASER EMITTER INCLUDING NANOWIRES
A laser emitter is provided, including a substrate and a dielectric mask layer located proximate to and above the substrate in a thickness direction. The dielectric mask layer may have a plurality of trenches formed therein. The plurality of trenches may have a plurality of different respective widths. The laser emitter may further include a respective nanowire located within each trench of the plurality of trenches. Each nanowire may include a first semiconductor layer located above the substrate in the thickness direction. Each nanowire may further include a quantum well layer located proximate to and above the first semiconductor layer in the thickness direction. Each nanowire may further include a second semiconductor layer located proximate to and above the quantum well layer in the thickness direction.
Laser emitter including nanowires
A laser emitter is provided, including a substrate and a dielectric mask layer located proximate to and above the substrate in a thickness direction. The dielectric mask layer may have a plurality of trenches formed therein. The plurality of trenches may have a plurality of different respective widths. The laser emitter may further include a respective nanowire located within each trench of the plurality of trenches. Each nanowire may include a first semiconductor layer located above the substrate in the thickness direction. Each nanowire may further include a quantum well layer located proximate to and above the first semiconductor layer in the thickness direction. Each nanowire may further include a second semiconductor layer located proximate to and above the quantum well layer in the thickness direction.
PHOTONIC CRYSTAL SURFACE LIGHT-EMITTING LASER ELEMENT
A photonic-crystal surface-emitting laser element includes: a first semiconductor layer formed by embedding a photonic crystal layer that includes air holes arranged with two-dimensional periodicity in a formation region in a plane parallel to the photonic crystal layer; an active layer formed on the first semiconductor layer; a second semiconductor layer formed on the active layer; and a mesa portion with a mesa shape formed at a surface of the second semiconductor layer, wherein the mesa portion is located inside the formation region of the air holes when viewed in a direction perpendicular to the photonic crystal layer.
VERTICAL CAVITY SURFACE EMITTING DEVICE
A vertical cavity surface emitting device includes a substrate, a first multilayer film reflecting mirror formed on the substrate, a light-emitting structure layer formed on the first multilayer film reflecting mirror, the light-emitting structure layer including a light-emitting layer; and a second multilayer film reflecting mirror formed on the light-emitting structure layer, the second multilayer film reflecting mirror constituting a resonator between the first multilayer film reflecting mirror and the second multilayer film reflecting mirror. The light-emitting structure layer has a high resistance region and a low resistance region having an electrical resistance lower than an electrical resistance of the high resistance region. The low resistance region has a plurality of partial regions arranged into a ring shape while being separated by the high resistance region in a plane of the light-emitting structure layer.
Magnesium based gettering regions for gallium and nitrogen containing laser diode devices
In an example, the present invention provides a gallium and nitrogen containing laser diode device. The device has a gallium and nitrogen containing substrate material comprising a surface region, which is configured on either a ({10-10}) crystal orientation or a {10-10} crystal orientation configured with an offcut at an angle toward or away from the [0001] direction. The device also has a GaN region formed overlying the surface region, an active region formed overlying the surface region, and a gettering region comprising a magnesium species overlying the surface region. The device has a p-type cladding region comprising an (InAl)GaN material doped with a plurality of magnesium species formed overlying the active region.
WAVELENGTH TUNABLE LASER DEVICE AND METHOD OF MANUFACTURING THE SAME
A wavelength tunable laser device includes a substrate, a plurality of first optical waveguides provided in the substrate, and a plurality of semiconductor elements bonded on a surface of the substrate and on the plurality of first optical waveguides. The semiconductor elements are formed of a III-V group compound semiconductor and have optical gains. Wavelengths with which the optical gains of the plurality of semiconductor elements reach peaks differ from one another.
CONTROL METHOD AND CONTROL DEVICE OF WAVELENGTH TUNABLE LASER DEVICE, AND NON-TRANSITORY STORAGE MEDIUM STORING CONTROL PROGRAM OF WAVELENGTH TUNABLE LASER DEVICE
A method of controlling a wavelength tunable laser device including a substrate and a plurality of semiconductor elements. A plurality of first optical waveguides are provided in the substrate. The plurality of semiconductor elements are formed of a III-V group compound semiconductor, have optical gains, and are optically coupled to the plurality of first optical waveguides of the substrate. Wavelengths with which gains of the plurality of semiconductor elements reach peaks differ from one another. The method includes, selecting a first optical waveguide configured to transmit light from among the plurality of first optical waveguides, and causing light to be emitted from a first semiconductor element that is a semiconductor element optically coupled to the selected first optical waveguide among the plurality of semiconductor elements.