MULTI-SEGMENT ALL-FIBER LASER
A multi-segment all-fiber laser is provided. The device includes a first active fiber laser segment, a first grating, a second grating, and a gain-phase coupling fiber segment arranged between the first and second gratings, said gain-phase coupling segment providing coupling of gain and phase between said first and second gratings.
1 . Multi-segment all-fiber laser device, including:
a first active fiber laser segment;
a first grating;
a second grating; and
a gain-phase coupling fiber segment arranged between the first and second gratings, said gain-phase coupling segment providing coupling of gain and phase between said first and second gratings.
2 . Multi-segment all-fiber laser device according to claim 1 wherein said first and second gratings are distributed feed-back grating structures.
3 . Multi-segment all-fiber laser device according to claim 1 wherein the first grating is located in the first active fiber laser segment.
4 . Multi-segment all-fiber laser device according to claim 1 wherein the second grating is located in a second active fiber laser segment.
5 . Multi-segment all-fiber laser device according to claim 1 wherein said gain-phase coupling segment comprises an active fiber having a variable optical gain depending on the power of radiation transmitted therein.
6 . Multi-segment all-fiber laser device according to claim 1 wherein said gain-phase coupling segment comprises a nonlinear optical fiber with an intensity dependent refractive index.
7 . Multi-segment all-fiber laser device according to claim 1 wherein the gain-phase coupling segment is connected to a control pump source for providing pump radiation (Pcontrol) in the gain-phase coupling segment.
8 . Multi-segment all-fiber laser device according to claim 7 , further comprising a gain-phase control unit, wherein said gain-phase control unit is adapted to control the control pump source and to adjust the gain and/or phase in said gain-phase coupling segment.
9 . Multi-segment all-fiber laser device according to claim 1 wherein the first active fiber laser segment and/or the second active fiber laser segment is pumped by an activation pump source.
10 . Multi-segment all-fiber laser device according to claim 1 wherein the gain-phase coupling segment is connected to a temperature control unit.
11 . Multi-segment all-fiber laser device according to claim 10 ,
wherein the refractive index of the gain-phase coupling segment is temperature-dependent; and
wherein the temperature control unit is adapted to control the temperature of the gain-phase coupling segment and to adjust the refractive index of the gain-phase coupling segment.
12 . Method of emitting radiation pulses and/or pulse trains, including the steps of:
activating a first active fiber laser segment of a multi-segment all-fiber laser device to emit radiation;
at least partially reflecting the radiation between a first grating of said multi-segment all-fiber laser device and a second grating of said multi-segment all-fiber laser device; and
adjusting a gain-phase coupling fiber segment arranged between the first and second gratings in order to couple gain and phase between said first and second gratings.
13 . Method of claim 12 , further comprising the step of controlling the temperature of said gain-phase coupling fiber segment in order to provide gain-phase coupling between both gratings.
14 . Method of claim 12 ,
wherein said gain-phase coupling fiber segment includes an active fiber having a variable optical gain depending on the optical power of radiation transmitted therein, and
wherein said active fiber is pumped in order to adjust the optical gain of the active fiber and to provide gain-phase coupling between both gratings.
15 . Method of claim 12 , further comprising the step of regulating the radiation power inside a nonlinear optical fiber included in said gain-phase coupling fiber segment and thus regulating the refractive index of the nonlinear optical fiber.