The invention relates to a resonantly pumped, trivalent thulium ion (Tm3+) doped crystal laser source providing enhanced efficiency.
Lasers operating with a wavelength near 2 microns are useful in many military and medical applications; they often utilize trivalent thulium ion (Tm3+) doped crystals as their optical gain medium. Traditionally, these are pumped by 0.7 to 0.8 micron light, exciting the Tm ions from the 3H6 ground state manifold to the 2nd excited state 3H4 manifold (
What is needed, therefore, are techniques for more efficient generation of ˜2 micron light in Tm3+ lasers.
The invention provides a more efficient (Stokes factor approximately 80%), resonantly pumped, Tm3+ doped, crystal laser for use in applications including countermeasures. Embodiments are pumped from the 3H6 ground state manifold to the 1st excited 3F4 state manifold by photons with wavelengths between 1.4 and 2.2 microns, depending upon the choice of crystalline host (see
Embodiments provide a resonantly-pumped laser apparatus comprising a pump source producing at least a first wavelength of light; a coupling to couple the at least a first wavelength of light; and a resonator receiving the at least a first wavelength of light, the resonator comprising an input coupler/high reflector (HR), a trivalent thulium ion (Tm3+) doped crystal, and an output coupler (OC); wherein a laser-generated light source is pumped from a 3H6 ground state manifold to a first excited 3F4 state manifold generating at least a second wavelength of light. In another embodiment, the pump source comprises a fiber laser. In another embodiment, the pump source comprises a diode laser. In another embodiment, the pump source comprises a solid state laser. In another embodiment, the pump source comprises at least two of a fiber laser, a diode laser, and a solid state laser. In another embodiment, the coupling comprises fiber. In another embodiment, the coupling comprises lens ducts. In another embodiment, the coupling comprises free space coupling. In another embodiment, the geometry of pumping is side-pumped. In another embodiment, the geometry of pumping is end-pumped. In another embodiment, the at least a first wavelength comprises two pump wavelengths. In another embodiment, the at least a first wavelength pump light is polarized for pumping a crystalline axis. In another embodiment, the at least a first wavelength pump light comprises two wavelengths having orthogonal polarization states. Another embodiment further comprises a Q-switch. In another embodiment, the laser operates in a pulsed mode wherein the Q-switch is an active Q-switch. In another embodiment, at least one of the OC and the HR comprises a free-standing optic. In another embodiment, at least one of the OC and the HR comprises a coating on Tm3+ host crystal. Another embodiment comprises a crystalline host selected from the group consisting of YALO, YAG, LuAG, YLF, and YSAG.
Other embodiments provide a resonantly-pumped, laser-generated, light source apparatus comprising a pump source producing at least a first wavelength of light; a coupling to couple the at least a first wavelength of light; and a resonator receiving the at least a first wavelength of light comprising an input coupler/high reflector (HR), a trivalent thulium ion (Tm3+) doped crystal, and an output coupler (OC), wherein the resonator is quasi-monolithic having at least one air gap; wherein the laser-generated light source is pumped from a 3H6 ground state manifold to a first excited 3F4 state manifold by photons with wavelengths between about approximately 1.4 microns and about approximately 2.2 microns, thereby generating at least a second wavelength of quasi-continuous wave light.
Yet other embodiments provide a laser system comprising a pump source producing at least a first wavelength of light; a coupling to couple the at least a first wavelength of light; and a resonator receiving the at least a first wavelength of light comprising an input coupler/high reflector (HR), a trivalent thulium ion (Tm3+) doped crystal, a passive Q-switch, and an output coupler (OC), wherein concentration of doping of the Tm3+ doped crystal is between about approximately 0.5% and about approximately 24%; wherein the laser-generated light source is pumped from a 3H6 ground state manifold to a first excited 3F4 state manifold generating at least a second wavelength of light.
The features and advantages described herein are not all-inclusive and, in particular, many additional features and advantages will be apparent to one of ordinary skill in the art in view of the drawings, specification, and claims. Moreover, it should be noted that the language used in the specification has been principally selected for readability and instructional purposes, and not to limit the scope of the inventive subject matter.
Embodiments comprise a pump source with wavelengths between 1.4 and 2.2 microns. For embodiments, the pump source is a fiber laser, a diode laser, a solid state laser, or some combination of these. The coupling of this pump light to the trivalent thulium ion (Tm3+) doped crystal for embodiments is achieved via fiber coupling, lens ducts, and/or free space coupling via bulk optics in either a side- or end-pumped geometry. In embodiments, the pump light is polarized for pumping a particular crystalline axis, or unpolarized in others. Two different pump wavelengths with orthogonal polarization states may be used in embodiments to pump two different crystalline axes in a biaxial host crystal. The laser resonator comprises an input coupler/high reflector (HR), the Tm3+ doped crystal, and an output coupler (OC). The laser resonator output wavelength may range from 1.5 to 2.4 microns. Embodiments exist wherein the laser contains a Q-switch and embodiments exist wherein the laser does not contain a Q-switch. For embodiments, the laser is operated continuous wave (CW), or pulsed, or quasi CW (both pulsed and CW modes). For pulsed, the Q-switch is an active Q-switch (acousto-optic, electro-optic, etc.) or it may be a passive Q-switch. In embodiments, the HR is one or more free standing optics or simply a coating placed upon the Tm3+crystal. The same holds true for the OC. The Tm3+ doped crystal has a Tm concentration between 0.5 and 24 (%) in the embodiments. The host crystal may be any acceptable crystalline host such as, but not limited to, YALO, YAG, LuAG, YLF, YSAG, etc. Embodiments exist wherein the host crystal has undoped regions on its input and/or output faces, and embodiments exist wherein the host crystal does not have undoped regions on its input and/or output faces. A monolithic arrangement of all elements is provided for embodiments as are quasi monolithic arrangements with one or more air gaps and one or more monolithic subsections.
The foregoing description of the embodiments of the invention has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in light of this disclosure. It is intended that the scope of the invention be limited not by this detailed description, but rather by the claims appended hereto.
Number | Name | Date | Kind |
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7298768 | Jiang | Nov 2007 | B1 |
20030063884 | Smith et al. | Apr 2003 | A1 |
Number | Date | Country | |
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20110150011 A1 | Jun 2011 | US |