AU778304B2

Side pumped Q-switched microlaser and associated fabrication method

Abstract

This record has no abstract on file.

AU778304B2, drawing sheet 1
Sheet 1 of 7

Term

Term ended

Expired 20 June 2020, 6.3 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

25 claims: 2 independent, 23 dependent

  1. 1
    THE CLAIMS DEFINING THE INVENTION ARE AS FOLLOWS:1. A microlaser including: a microresonator including an active gain medium and a passive Q-switch disposed immediately adjacent said active gain medium, said microresonator 5 extending lengthwise between opposed end faces, said microresonator also having a first side surface extending between the opposed end faces;first and second reflective surfaces disposed proximate respective ones of the opposed end faces to define a microresonator cavity therebetween;and a pump source for introducing pump signals into the active gain medium 10 via the first side surface of said microresonator such that a zig-zag resonation pattern is established within the microresonator cavity, and wherein said microlaser produces a pulsed output.
  2. 15
    A microlaser including:a microresonator including an active gain medium and a passive Q-switch disposed immediately adjacent said active gain medium, said microresonator extending lengthwise between opposed end faces, said microresonator also 10 having a first side surface extending between the opposed end faces;and first and second reflective surfaces disposed proximate respective ones of the opposed end faces to define a microresonator cavity therebetween, said microresonator cavity defining a longitudinal axis extending between the opposed end faces, 15 wherein the opposed end faces are each disposed at a nonorthogonal angle a relative to the longitudinal axis defined by said microresonator cavity such that the microlaser is capable of supporting a zig-zag resonation pattern in response to side pumping of the active gain medium via the first side surface of said microresonator and wherein said microlaser produces a pulsed output. 20
  3. 25
    25 relative to the opposed major surfaces. ··· ··· • · 32. A method according to Claim 28 further including coating a first side surface of a respective microlaser with an anti reflection coating for permitting :*·’ pump signals within a predetermined range of wavelengths to be received by the active gain medium without being reflected from the first side surface, wherein said coating step follows said cutting step. 33. A method according to Claim 32 further including coating a second side surface of the respective microlaser, opposite the first side surface, with a 5 reflectance coating for reflecting the pump signals, wherein coating the second side surface follows said cutting step. 34. A method according to Claim 33 further including roughening third and fourth opposed side surfaces of the respective microlaser to thereby diffuse light, wherein said roughening step follows said cutting step. 10 35. A method according to Claim 28 further including coating the opposed end faces of the microlaser with first and second reflective surfaces, respectively, following said cutting step, wherein the first reflective surface is highly reflective for laser signals having a predetermined wavelength while the second reflective surface is partially reflective for laser signals having the predetermined 15 wavelength such that the resulting microlaser is capable of emitting laser signals of the predetermined wavelength via the second reflective surface. 36. A method according to Claim 35 wherein coating one end face of the microlaser with the first reflective surface includes coating the end face of the microlaser that is formed by the active gain medium with the first reflective 20 surface, and wherein coating the other end face of the microlaser with the second j’j reflective surface comprises coating the end face of the microlaser that is formed • · Σ J by the Q-switch material with the second reflective surface. • · · J • · · • · • · • · j:·· 37. A method according to Claim 28 wherein said providing step includes providing a layer of tetravalent chrome doped yttrium aluminum garnet (YAG), 25 and wherein said growing step comprises growing neodymium-doped YAG upon ···· ...J the layer of tetravalent chrome doped YAG. • ·· · • · • · • · • · · · ...J 38. A microlaser substantially as hereinbefore described with reference to the ···· ...J accompanying drawings. 39. A method of fabricating a plurality of Q-switched microlasers substantially as hereinbefore described with reference to the accompanying drawings.