Patents by Inventor James N. Baillargeon

James N. Baillargeon has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 6788466
    Abstract: A multiple reflectivity band reflector (MRBR) includes a stack of dielectric layers, arranged so that the reflector has a reflectivity profile comprising a plurality of reflectivity bands, e.g. at least first and second wavelength bands with reflectivity above a lasing threshold reflectivity, separated by a third wavelength band between the first and second wavelength bands having reflectivity below the lasing threshold reflectivity. A laser having at least a first mirror and an MRBR as the second mirror has a laser cavity, at least a portion of which is defined by the first mirror and the MRBR. An active region located within the laser cavity contains a material that is capable of stimulated emission at one or more wavelengths in the first and second wavelength bands. The gain spectrum of the laser is adjusted to select one of the first and second wavelength bands, thereby providing for lasing at a wavelength within the selected wavelength band. The laser may be, e.g.
    Type: Grant
    Filed: July 18, 2002
    Date of Patent: September 7, 2004
    Assignee: Applied Optoelectronics, Inc.
    Inventors: James N. Baillargeon, Wen-Yen Hwang, Klaus Alexander Anselm, Chih-Hsiang Lin
  • Patent number: 6765948
    Abstract: The present invention is directed to a method and system for conditioning the output signals of an array of surface-emitting lasers with an array of edge-receiving optical devices. Both the array of surface-emitting lasers and the array of edge-receiving optical devices are mounted on an optical bench substrate. The array of edge-receiving optical devices may also be monolithically fabricated on the optical bench substrate. The array of surface-emitting lasers and the array of edge-receiving optical devices are aligned by alignment features and slots, which are fabricated on the optical bench substrate so as to optically couple the array of surface-emitting lasers to the array of edge-receiving optical devices.
    Type: Grant
    Filed: May 15, 2001
    Date of Patent: July 20, 2004
    Assignee: Applied Optoelectronics, Inc.
    Inventors: Stefan J. Murry, James N. Baillargeon
  • Patent number: 6765939
    Abstract: A monitored laser system has a laser having a first mirror; an exit mirror, at least a portion of a laser cavity defined by the first mirror and the exit mirror; and an active region located in the laser cavity, the active region containing a material that is capable of stimulated emission at one or more wavelengths of laser light within a tuning range of the laser. A multiple reflectivity band reflector (MRBR) is coupled to at least a portion of laser light emitted from the laser and transmits filtered laser light. The MRBR has a plurality of layers of material arranged in parallel such that the reflector has a plurality of reflectivity peaks within the tuning range, each reflectivity peak separated from neighboring reflectivity peak by a reflectivity trough having a trough minimum, said reflectivity peaks characterized by a peak profile and said trough minima between said reflectivity peaks characterized by a trough profile.
    Type: Grant
    Filed: July 18, 2002
    Date of Patent: July 20, 2004
    Assignee: Applied Optoelectronics, Inc.
    Inventors: James N. Baillargeon, Wen-Yen Hwang, Klaus Alexander Anselm, Chih-Hsiang Lin
  • Patent number: 6763046
    Abstract: A monitored laser system includes a laser with a first mirror and an exit mirror. The laser also has a laser cavity defined at least in part by the first mirror and the exit mirror. Within the laser cavity is an active region that contains material that is capable of stimulated emission at one or more wavelengths such that laser light is emitted from the laser. A power source is coupled to the active region. A multiple reflectivity band reflector (MRBR) is coupled to at least a portion of the emitted laser light. The MRBR has at least first and second wavelength bands with reflectivity above a particular reflectivity separated by at least a third wavelength band having reflectivity below the particular reflectivity. A first photodiode is coupled to at least a portion of the filtered laser light and produces an output based on the amount and wavelength of light received.
    Type: Grant
    Filed: December 20, 2001
    Date of Patent: July 13, 2004
    Assignee: Applied Optoelectronics, Inc.
    Inventors: James N. Baillargeon, Wen-Yen Hwang, Klaus Alexander Anselm, Chih-Hsiang Lin
  • Patent number: 6763053
    Abstract: A multiple reflectivity band reflector (MRBR) includes a stack of dielectric layers, arranged so that the reflector has a reflectivity profile comprising a plurality of reflectivity bands, e.g. at least first and second wavelength bands with reflectivity above a lasing threshold reflectivity, separated by a third wavelength band between the first and second wavelength bands having reflectivity below the lasing threshold reflectivity. A laser having at least a first mirror and an MRBR as the second mirror has a laser cavity, at least a portion of which is defined by the first mirror and the MRBR. An active region located within the laser cavity contains a material that is capable of stimulated emission at one or more wavelengths in the first and second wavelength bands. The gain spectrum of the laser is adjusted to select one of the first and second wavelength bands, thereby providing for lasing at a wavelength within the selected wavelength band. The laser may be, e.g.
    Type: Grant
    Filed: July 18, 2002
    Date of Patent: July 13, 2004
    Assignee: Applied Optoelectronics, Inc.
    Inventors: James N. Baillargeon, Wen-Yen Hwang, Klaus Alexander Anselm, Chih-Hsiang Lin
  • Patent number: 6696307
    Abstract: A method is provided, the method comprising forming a first of n masking layers for a device and forming a first of n phase-shift layers for the device using the first of the n masking layers. The method also comprises forming a second of n masking layers for a device, and forming a second of n phase-shift layers for the device using the second of the n masking layers and forming at least n+1 and at most 2n different optical thicknesses for the device using the n masking layers and the n phase-shift layers.
    Type: Grant
    Filed: September 11, 2001
    Date of Patent: February 24, 2004
    Assignee: Applied Optoelectronics, Inc.
    Inventors: Wen-Yen Hwang, Klaus Alexander Anselm, Jun Zheng, James N. Baillargeon
  • Patent number: 6697413
    Abstract: An embodiment of a surface-emitting laser structure includes a first semiconductor region of a first conductivity type coupled to a first contact and a second semiconductor region of the same conductivity type coupled to a second contact. A third semiconductor region of the opposite conductivity type is coupled to a third contact and interposed between the first and second semiconductor regions. An active region is interposed between the first and third regions. In a further embodiment, the laser structure may include a variable refractive index structure interposed between the second and third semiconductor regions. In another embodiment, a surface-emitting laser structure may include an active region between a first semiconductor region of a first conductivity type coupled to a first contact, and a second As semiconductor region of opposite conductivity type coupled to a second contact. A third electrical contact is dielectrically spaced from the second semiconductor region.
    Type: Grant
    Filed: October 31, 2001
    Date of Patent: February 24, 2004
    Assignee: Applied Optoelectronics, Inc.
    Inventors: Wen-Yen Hwang, Chih-Hsiang Lin, Jun Zheng, James N. Baillargeon
  • Patent number: 6669367
    Abstract: A vertical-external-cavity surface-emitting laser (VECSEL) is formed by providing a monolithic portion having a first laser cavity mirror and an active region disposed on the first mirror. The cavity is completed with a second laser cavity mirror, such as a DBR, deposited onto the light-receiving end of an optical device, such as an optical fiber. The DBR-on-fiber-end is mounted with respect to the active region to complete the laser cavity and to provide automatic coupling of the output laser light into the fiber.
    Type: Grant
    Filed: October 10, 2001
    Date of Patent: December 30, 2003
    Assignee: Applied Optoelectronics, Inc.
    Inventors: Chih-Hsiang Lin, Wen-Yen Hwang, Jun Zheng, Stefan J. Murry, James N. Baillargeon
  • Patent number: 6636544
    Abstract: A device is provided, the device comprising a first vertical cavity surface-emitting laser (VCSEL) of a monolithic vertical cavity surface-emitting laser (VCSEL) array, the first vertical cavity surface-emitting laser (VCSEL) being tunable to a first plurality of wavelengths. The device also comprises a second vertical cavity surface-emitting laser (VCSEL) of the monolithic vertical cavity surface-emitting laser (VCSEL) array, the second vertical cavity surface-emitting laser (VCSEL) being tunable to a second plurality of wavelengths, wherein at least one wavelength is in both the first plurality of wavelengths and the second plurality of wavelengths.
    Type: Grant
    Filed: September 11, 2001
    Date of Patent: October 21, 2003
    Assignee: Applied Optoelectronics, Inc.
    Inventors: James N. Baillargeon, Wen-Yen Hwang, Klaus Alexander Anselm, Jun Zheng
  • Publication number: 20030099273
    Abstract: A surface emitting laser is coupled to an external modulator. The laser and the modulator aligned by photolithographically defined features. In a preferred embodiment, the electromagnetic output of the laser is reflected at a right angle from a mirror mounted on a substrate. The reflected output enters a modulator mounted on the same substrate as the mirror. A circuit coupled to the modulator controls the modulation undergone by the electromagnetic output. The modulated output is coupled to an optical fiber for transmission.
    Type: Application
    Filed: January 9, 2001
    Publication date: May 29, 2003
    Inventors: Stefan J. Murry, James N. Baillargeon, Klaus Alexander Anselm, Wen-Yen Hwang
  • Patent number: 6560265
    Abstract: The present invention is directed to a VCSEL and method of fabricating same. First, a substrate is provided. Then, a first reflector is disposed (where “disposed” includes being deposited or epitaxially grown) on the substrate, which is followed by an active region being disposed on the first reflector. Then, a second reflector is disposed on the active region such that the active region is interposed between the first reflector and the second reflector. Then, a polarizer is formed inside, or on the top or bottom of, the second reflector. The polarizer contains parallel stripes of material doped differently than that of the second reflector. The polarizer polarizes the light generated from the active region.
    Type: Grant
    Filed: September 11, 2001
    Date of Patent: May 6, 2003
    Assignee: Applied Optoelectronics, Inc.
    Inventors: Wen-Yen Hwang, James N. Baillargeon
  • Publication number: 20030081642
    Abstract: An embodiment of a surface-emitting laser structure includes a first semiconductor region of a first conductivity type coupled to a first contact and a second semiconductor region of the same conductivity type coupled to a second contact. A third semiconductor region of the opposite conductivity type is coupled to a third contact and interposed between the first and second semiconductor regions. An active region is interposed between the first and third regions. In a further embodiment, the laser structure may include a variable refractive index structure interposed between the second and third semiconductor regions. In another embodiment, a surface-emitting laser structure may include an active region between a first semiconductor region of a first conductivity type coupled to a first contact, and a second semiconductor region of opposite conductivity type coupled to a second contact. A third electrical contact is dielectrically spaced from the second semiconductor region.
    Type: Application
    Filed: October 31, 2001
    Publication date: May 1, 2003
    Applicant: APPLIED OPTOELECTRONICS, INC.
    Inventors: Wen-Yen Hwang, Chih-Hsiang Lin, Jun Zheng, James N. Baillargeon
  • Publication number: 20030076866
    Abstract: A multiple reflectivity band reflector (MRBR) includes a stack of dielectric layers, arranged so that the reflector has a reflectivity profile comprising a plurality of reflectivity bands, e.g. at least first and second wavelength bands with reflectivity above a lasing threshold reflectivity, separated by a third wavelength band between the first and second wavelength bands having reflectivity below the lasing threshold reflectivity. A laser having at least a first mirror and an MRBR as the second mirror has a laser cavity, at least a portion of which is defined by the first mirror and the MRBR. An active region located within the laser cavity contains a material that is capable of stimulated emission at one or more wavelengths in the first and second wavelength bands. The gain spectrum of the laser is adjusted to select one of the first and second wavelength bands, thereby providing for lasing at a wavelength within the selected wavelength band. The laser may be, e.g.
    Type: Application
    Filed: July 18, 2002
    Publication date: April 24, 2003
    Applicant: APPLIED OPTOELECTRONICS, INC.
    Inventors: James N. Baillargeon, Wen-Yen Hwang, Klaus Alexander Anselm, Chih-Hsiang Lin
  • Publication number: 20030072523
    Abstract: A vertical-external-cavity surface-emitting laser (VECSEL) is formed by providing a monolithic portion having a first laser cavity mirror and an active region disposed on the first mirror. The cavity is completed with a second laser cavity mirror, such as a DBR, deposited onto the light-receiving end of an optical device, such as an optical fiber. The DBR-on-fiber-end is mounted with respect to the active region to complete the laser cavity and to provide automatic coupling of the output laser light into the fiber.
    Type: Application
    Filed: October 10, 2001
    Publication date: April 17, 2003
    Inventors: Chih-Hsiang Lin, Wen-Yen Hwang, Jun Zheng, Stefan J. Murry, James N. Baillargeon
  • Patent number: 6549556
    Abstract: A metal bonded vertical-cavity surface-emitting laser (VCSEL) structure with a bottom dielectric distributed Bragg reflector (DBR) mirror, and method for fabricating the VCSEL structure. The VCSEL structure consists a metal bonding layer disposed on a submount at a bottom side of the metal bonding layer; a bottom cavity mirror comprising a bottom dielectric distributed Bragg reflector (DBR) disposed within the metal bonding layer, the bottom dielectric DBR having a reflectance band including the lasing wavelength; a bottom current-spreading layer disposed on said bottom dielectric DBR and on a substantially flat, annular top surface of said metal bonding layer; a semiconductor active region disposed on the bottom current-spreading layer, said active region capable of stimulated emission at the lasing wavelength; and a top cavity mirror disposed above the active region and having a reflectance band including the lasing wavelength.
    Type: Grant
    Filed: November 30, 2001
    Date of Patent: April 15, 2003
    Assignee: Applied Optoelectronics, Inc.
    Inventors: Wen-Yen Hwang, Klaus Alexander Anselm, Stefan J. Murry, Chih-Hsiang Lin, Jun Zheng, James N. Baillargeon
  • Publication number: 20030053512
    Abstract: A laser apparatus has a first mirror, a second mirror, at least a portion of which is defined by the first and second mirrors. The laser has an active region located in the laser cavity, which is capable of stimulated emission at one or more wavelengths of light. The second mirror comprises a plurality of dielectric layers arranged in parallel and having a reflectivity band with a peak reflectivity at a peak wavelength, said reflectivity band having a width of less than 1 nm at a reflectivity of 3% less than the peak reflectivity. The laser apparatus may be a tunable laser apparatus in which the peak wavelength of the reflectivity band is adjusted, thereby adjusting the lasing wavelength of the laser. The reflectivity band may be a lasing threshold reflectivity band over which the reflectivity of the second mirror is greater than a lasing threshold reflectivity which is sufficient to permit lasing.
    Type: Application
    Filed: July 16, 2002
    Publication date: March 20, 2003
    Applicant: APPLIED OPTOELECTRONICS, INC.
    Inventors: James N. Baillargeon, Wen-Yen Hwang, Chih-Hsiang Lin
  • Publication number: 20030053511
    Abstract: A multiple reflectivity band reflector (MRBR) includes a stack of dielectric layers, arranged so that the reflector has a reflectivity profile comprising a plurality of reflectivity bands, e.g. at least first and second wavelength bands with reflectivity above a lasing threshold reflectivity, separated by a third wavelength band between the first and second wavelength bands having reflectivity below the lasing threshold reflectivity. A laser having at least a first mirror and an MRBR as the second mirror has a laser cavity, at least a portion of which is defined by the first mirror and the MRBR. An active region located within the laser cavity contains a material that is capable of stimulated emission at one or more wavelengths in the first and second wavelength bands. The gain spectrum of the laser is adjusted to select one of the first and second wavelength bands, thereby providing for lasing at a wavelength within the selected wavelength band. The laser may be, e.g.
    Type: Application
    Filed: July 18, 2002
    Publication date: March 20, 2003
    Applicant: APPLIED OPTOELECTRONICS, INC.
    Inventors: James N. Baillargeon, Wen-Yen Hwang, Klaus Alexander Anselm, Chih-Hsiang Lin
  • Publication number: 20030048827
    Abstract: The present invention is directed to a VCSEL and method of fabricating same. First, a substrate is provided. Then, a first reflector is disposed (where “disposed” includes being deposited or epitaxially grown) on the substrate, which is followed by an active region being disposed on the first reflector. Then, a second reflector is disposed on the active region such that the active region is interposed between the first reflector and the second reflector. Then, a polarizer is formed inside, or on the top or bottom of, the second reflector. The polarizer contains parallel stripes of material doped differently than that of the second reflector. The polarizer polarizes the light generated from the active region.
    Type: Application
    Filed: September 11, 2001
    Publication date: March 13, 2003
    Inventors: Wen-Yen Hwang, James N. Baillargeon
  • Publication number: 20030043866
    Abstract: A monitored laser system has a laser having a first mirror; an exit mirror, at least a portion of a laser cavity defined by the first mirror and the exit mirror; and an active region located in the laser cavity, the active region containing a material that is capable of stimulated emission at one or more wavelengths of laser light within a tuning range of the laser. A multiple reflectivity band reflector (MRBR) is coupled to at least a portion of laser light emitted from the laser and transmits filtered laser light. The MRBR has a plurality of layers of material arranged in parallel such that the reflector has a plurality of reflectivity peaks within the tuning range, each reflectivity peak separated from neighboring reflectivity peak by a reflectivity trough having a trough minimum, said reflectivity peaks characterized by a peak profile and said trough minima between said reflectivity peaks characterized by a trough profile.
    Type: Application
    Filed: July 18, 2002
    Publication date: March 6, 2003
    Applicant: APPLIED OPTOELECTRONICS, INC.
    Inventors: James N. Baillargeon, Wen-Yen Hwang, Klaus Alexander Anselm, Chih-Hsiang Lin
  • Publication number: 20020163942
    Abstract: A monitored laser system includes a laser with a first mirror and an exit mirror. The laser also has a laser cavity defined at least in part by the first mirror and the exit mirror. Within the laser cavity is an active region that contains material that is capable of stimulated emission at one or more wavelengths such that laser light is emitted from the laser. A power source is coupled to the active region. A multiple reflectivity band reflector (MRBR) is coupled to at least a portion of the emitted laser light. The MRBR has at least first and second wavelength bands with reflectivity above a particular reflectivity separated by at least a third wavelength band having reflectivity below the particular reflectivity. A first photodiode is coupled to at least a portion of the filtered laser light and produces an output based on the amount and wavelength of light received.
    Type: Application
    Filed: December 20, 2001
    Publication date: November 7, 2002
    Applicant: APPLIED OPTOELECTRONICS, INC.
    Inventors: James N. Baillargeon, Wen-Yen Hwang, Klaus Alexander Anselm, Chih-Hsiang Lin