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Patent · US5383198A · A · US

Self-starting mode-locked ring cavity laser

(11) Publication number
US5383198A
(21) Application number
08/140,503
(22) Filing date
1993-10-25
(30) Priority date
1993-10-25
(43) Publication date
1995-01-17
(45) Date of grant
1995-01-17
(51) IPC
H01S 3/098
(52) CPC
  • H01S Devices using the process of light amplification by stimulated emission of radiation [laser] to amplify or generate light; devices using stimulated emission of electromagnetic radiation in wave ranges other than optical: 3/1112, 3/0811, 3/082, 3/083, 3/0943, 3/105
(73) Assignee
Cornell Research Foundation Inc
(72) Inventors
Wayne S. Pelouch; Peter E. Powers; Chung L. Tang
(54) Title
Self-starting mode-locked ring cavity laser
(57) Abstract

A self-mode-locked ring cavity laser incorporating a laser crystal such as Ti:Sapphire includes an external cavity for producing self-starting of mode-locked operation. The external cavity receives a portion of one of the continuous wave beams from the ring cavity modulates it, and retroreflects it back to the ring cavity to initiate mode-locked unidirectional operation. The unidirectional mode-locked operation is in a direction which decouples the external cavity.

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Claims (11)

  1. A self-starting, mode-locked femtosecond laser comprising: a laser cavity having a pair of spaced, aligned, curved mirrors and optical means including at least an output coupler; a laser crystal located between said curved mirrors; pump means supplying a pumping beam to said crystal, to produce first and second, oppositely directed continuous wave beams in said laser cavity, at least a portion of each of said beams passing out of said laser cavity through said output coupler; an external cavity receiving said first beam and retroreflecting said first beam back into said laser cavity; and means in said external cavity for modulating said retroreflected beam to start mode-locked lasing operation in said laser cavity and to force unidirectional operation in the direction of said second beam.
  2. The self-starting, mode-locked laser of claim 1, wherein said means in said external cavity for modulating said retroreflected beam includes a mirror movable in the direction of said first beam.
  3. The self-starting, mode-locked laser of claim 2, wherein said means for modulating said retroreflected beam further includes modulator means mounting said mirror for reciprocating motion in the direction of said first beam.
  4. The self-starting, mode-locked laser of claim 1, wherein said external cavity has a length approximately equal to 1/2 the difference in optical path lengths between (a) the path of said first beam between said crystal and said output coupler and (b) the path of said second beam between said crystal and said output coupler.
  5. The self-starting, mode-locked laser of claim 4, further including adjustment means for adjusting said ring cavity to produce maximum power in a selected one of said first and second beams to thereby select said unidirectional operation.
  6. The self-starting, mode-locked laser of claim 1, wherein said laser cavity is a ring cavity, and wherein said first and second oppositely directed waves comprise clockwise and counterclockwise waves.
  7. The self-starting, mode-locked laser of claim 6, wherein said external cavity is arranged to receive one of said clockwise and counterclockwise beams.
  8. The self-starting, mode-locked laser of claim 7, wherein said means for modulating comprises a mirror movable in the direction of said one beam.
  9. The self-starting, mode-locked laser of claim 7, wherein said laser crystal is a Ti:Sapphire crystal.
  10. The self-starting, mode-locked laser of claim 7, wherein said laser crystal is a crystal capable of operating in the femtosecond domain.
  11. A method for self-starting, mode-locked operation of a ring laser, comprising: pumping a laser crystal located in a ring laser to produce continuous wave clockwise (CW) and counterclockwise (CCW) light beams; directing a portion of a selected one of said CW and CCW beams into an external cavity; and retroreflecting the selected portion of said one of said CW and CCW beams back into said ring cavity to interfere with the other of said CW and CCW beams in said crystal to thereby initiate unidirectional mode-locked operation in the direction of said other of said CW and CCW beams, thereby destroying said one of said CW and CCW beams to decouple said external cavity from said ring laser during continuous mode-locked operation.

Description

This invention was made with Government support under Contract No. F49620-90-C-0039 awarded by the Air Force Office of Scientific Research and under Grant No. ECS-9108570 awarded by the National Science Foundation. The Government has certain rights in the invention.

The present invention relates, in general, to a self-starting mode-locked laser, and more particularly to a self-starting mechanism for a laser that enables the laser to be self-starting within milliseconds while remaining completely unperturbed by the self-starting mechanism while it is mode locked. The apparatus includes a position-modulated mirror in an external cavity in which the cavity length and alignment are noncritical.

Recently, a great deal of emphasis has been placed on the development of passive mode-locking techniques for linear cavity lasers that would lead to self-starting, stable operation. Self-mode-locking has been demonstrated to produce short pulse widths and high output power without the need for additional cavity elements or optical modulation, and has been highly desirable for that reason. The onset of self-mode-locking, which has been attributed to the optical Kerr effect inside a laser crystal, requires formation of an intensity fluctuation in the cavity. Such an intensity fluctuation can be produced, in its simplest form, by a mechanical perturbation of the cavity mirrors or by a quick translation of an intracavity prism.

Citations (14)

  • US3548199A
  • US3949323A
  • US4085335A
  • US5309453A
  • US4517675A
  • US4641312A
  • US4612641A
  • US4646308A
  • US4815080A
  • US4793894A
  • US5034951A
  • US5054027A
  • US5017806A
  • US5305334A
Record as JSON
{
  "publication_number": "US5383198A",
  "country": "US",
  "kind": "A",
  "title": "Self-starting mode-locked ring cavity laser",
  "abstract": "A self-mode-locked ring cavity laser incorporating a laser crystal such as Ti:Sapphire includes an external cavity for producing self-starting of mode-locked operation. The external cavity receives a portion of one of the continuous wave beams from the ring cavity modulates it, and retroreflects it back to the ring cavity to initiate mode-locked unidirectional operation. The unidirectional mode-locked operation is in a direction which decouples the external cavity.",
  "claims": [
    "1. A self-starting, mode-locked femtosecond laser comprising: a laser cavity having a pair of spaced, aligned, curved mirrors and optical means including at least an output coupler; a laser crystal located between said curved mirrors; pump means supplying a pumping beam to said crystal, to produce first and second, oppositely directed continuous wave beams in said laser cavity, at least a portion of each of said beams passing out of said laser cavity through said output coupler; an external cavity receiving said first beam and retroreflecting said first beam back into said laser cavity; and means in said external cavity for modulating said retroreflected beam to start mode-locked lasing operation in said laser cavity and to force unidirectional operation in the direction of said second beam.",
    "2. The self-starting, mode-locked laser of claim 1, wherein said means in said external cavity for modulating said retroreflected beam includes a mirror movable in the direction of said first beam.",
    "3. The self-starting, mode-locked laser of claim 2, wherein said means for modulating said retroreflected beam further includes modulator means mounting said mirror for reciprocating motion in the direction of said first beam.",
    "4. The self-starting, mode-locked laser of claim 1, wherein said external cavity has a length approximately equal to 1/2 the difference in optical path lengths between (a) the path of said first beam between said crystal and said output coupler and (b) the path of said second beam between said crystal and said output coupler.",
    "5. The self-starting, mode-locked laser of claim 4, further including adjustment means for adjusting said ring cavity to produce maximum power in a selected one of said first and second beams to thereby select said unidirectional operation.",
    "6. The self-starting, mode-locked laser of claim 1, wherein said laser cavity is a ring cavity, and wherein said first and second oppositely directed waves comprise clockwise and counterclockwise waves.",
    "7. The self-starting, mode-locked laser of claim 6, wherein said external cavity is arranged to receive one of said clockwise and counterclockwise beams.",
    "8. The self-starting, mode-locked laser of claim 7, wherein said means for modulating comprises a mirror movable in the direction of said one beam.",
    "9. The self-starting, mode-locked laser of claim 7, wherein said laser crystal is a Ti:Sapphire crystal.",
    "10. The self-starting, mode-locked laser of claim 7, wherein said laser crystal is a crystal capable of operating in the femtosecond domain.",
    "11. A method for self-starting, mode-locked operation of a ring laser, comprising: pumping a laser crystal located in a ring laser to produce continuous wave clockwise (CW) and counterclockwise (CCW) light beams; directing a portion of a selected one of said CW and CCW beams into an external cavity; and retroreflecting the selected portion of said one of said CW and CCW beams back into said ring cavity to interfere with the other of said CW and CCW beams in said crystal to thereby initiate unidirectional mode-locked operation in the direction of said other of said CW and CCW beams, thereby destroying said one of said CW and CCW beams to decouple said external cavity from said ring laser during continuous mode-locked operation."
  ],
  "description_excerpt": "This invention was made with Government support under Contract No. F49620-90-C-0039 awarded by the Air Force Office of Scientific Research and under Grant No. ECS-9108570 awarded by the National Science Foundation. The Government has certain rights in the invention.\n\nThe present invention relates, in general, to a self-starting mode-locked laser, and more particularly to a self-starting mechanism for a laser that enables the laser to be self-starting within milliseconds while remaining completely unperturbed by the self-starting mechanism while it is mode locked. The apparatus includes a position-modulated mirror in an external cavity in which the cavity length and alignment are noncritical.\n\nRecently, a great deal of emphasis has been placed on the development of passive mode-locking techniques for linear cavity lasers that would lead to self-starting, stable operation. Self-mode-locking has been demonstrated to produce short pulse widths and high output power without the need for additional cavity elements or optical modulation, and has been highly desirable for that reason. The onset of self-mode-locking, which has been attributed to the optical Kerr effect inside a laser crystal, requires formation of an intensity fluctuation in the cavity. Such an intensity fluctuation can be produced, in its simplest form, by a mechanical perturbation of the cavity mirrors or by a quick translation of an intracavity prism.",
  "cpc": [
    "H01S 3/1112",
    "H01S 3/0811",
    "H01S 3/082",
    "H01S 3/083",
    "H01S 3/0943",
    "H01S 3/105"
  ],
  "ipc": [
    "H01S 3/098"
  ],
  "assignees": [
    "Cornell Research Foundation Inc"
  ],
  "inventors": [
    "Wayne S. Pelouch",
    "Peter E. Powers",
    "Chung L. Tang"
  ],
  "filing_date": "1993-10-25",
  "publication_date": "1995-01-17",
  "grant_date": "1995-01-17",
  "priority_date": "1993-10-25",
  "application_number": "US-14050393-A",
  "family_id": "22491534",
  "cited_by_count": 34,
  "citations": [
    "US3548199A",
    "US3949323A",
    "US4085335A",
    "US5309453A",
    "US4517675A",
    "US4641312A",
    "US4612641A",
    "US4646308A",
    "US4815080A",
    "US4793894A",
    "US5034951A",
    "US5054027A",
    "US5017806A",
    "US5305334A"
  ]
}

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