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Nd:KGW

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Nd:KGW

Nd:KGW晶體是一種可以實現高濃度摻雜的激光晶體,因為該晶體可以與高濃度的Nd離子混合并且具有較大的發射面積,因此其單脈沖和低重復激光性能優于Nd:YAG 。Nd:KGW晶體的吸收帶在808 nm處,可以有效地與LD泵浦光源耦合(發射波長為808 nm),從而提高其發光效率。此外,它的半高和半寬為12 nm,使其能夠適應LD發射波長隨溫度的漂移,這有利于進行二極管泵浦KGw激光實驗和器件研究。Nd:KGW不僅可以實現自由振蕩,Q開關,鎖模操作,還可以實現拉曼轉換。

Nd:KGW晶體是由受激拉曼散射產生的晶體,經過倍頻后可以成為可見光波段的多波長光源。

Nd:KGW晶體的拉曼特性取決于其高激發光束截面、低泵浦閾值、高輸出能量、高轉換效率以及兩個高拉曼增益系數(768和901 cm-1)。拉曼晶體的基頻光分別為911 nm,1067 nm和1351 nm,經過倍頻后可產生0.455 um,0.533 um和0.675 um的紅,黃和藍光,可用于材料加工,光通信,遙感,醫藥,環境監測,精密計量等領域。

物理性質

Nd濃度2.2%(cw),3%(quasi-cw)
熒光壽命130 μs
受激發射截面3.7*10-19?cm2
躍遷波長1067 nm
導熱系數Ka=2.6 W/Km
Kb=3.8 W/Km
Kc=3.4 W/Km
dn / dT0.4*10-6?K-1
折射率@ 1.06μmnp=1.978
nm=2.014
ng=2.049
熱膨脹系數(100):4*10-6?K-1
(010):3.6*10-6?K-1
(001):8.5*10-6?K-1
密度(g * cm-37.248
比熱容Cp500 Jkg-1K-1

光譜性質

激光波長(nm)1067
發射截面(pm2)a32.3
增益帶寬(nm)2.73
熒光壽命(μs)130 at 3% doping
導熱系數(Wm-1K-1~3

吸收和發射光譜

Nd-KGW激光晶體-吸收譜polar-南京光寶-CRYLINKNd-KGW激光晶體-吸收譜-南京光寶-CRYLINK
Nd-KGW激光晶體-Fluorescence-南京光寶-CRYLINKNd-KGW激光晶體-發射譜polar-南京光寶-CRYLINK

參考文獻

[1]? Kalisky Y Y ,? Scheps R ,? Hoffman H J , et al. Efficient diode-pumped Nd:KGW laser grown by top nucleated floating crystal method: Part II[J]. Proceedings of SPIE – The International Society for Optical Engineering, 2004, 5332:28-35.
[2]? Graf T ,? Balmer J E . Lasing properties of diode-laser-pumped Nd:KGW[J]. Optical Engineering, 1995, 34(8):2349-2352.
[3]? Demidovich A A ,? Shkadarevich A P ,? Danailov M B , et al. Comparison of cw laser performance of Nd:KGW, Nd:YAG, Nd:BEL, and Nd:YVO4 under laser diode pumping[J]. Applied Physics B, 1998, 67(1):11-15.
[4]? Kushawaha V ,? Banerjee A ,? Major L . High-efficiency flashlamp-pumped Nd:KGW laser[J]. Applied Physics B, 1993, 56(4):239-242.
[5]? Grabtchikov A S ,? Kuzmin A N ,? Lisinetskii V A , et al. Passively Q-switched 1.35 μm diode pumped Nd:KGW laser with V:YAG saturable absorber[J]. Optical Materials, 2001, 16(3):349-352.
[6]? Musset O ,? Boquillon J P . Comparative laser study of Nd:KGW and Nd:YAG near 1.3 μm[J]. Applied Physics B, 1997, 64(4):503-506.
[7]? Grabtchikov A S ,? Kuzmin A N ,? Lisinetskii V A , et al. Stimulated Raman scattering in Nd:KGW laser with diode pumping[J]. Journal of Alloys & Compounds, 2000, 300(none):300-302.
[8]? Lisinetskii V A ,? Grabtchikov A S ,? Demidovich A A , et al. Nd:KGW/KGW crystal: efficient medium for continuous-wave intracavity Raman generation[J]. Applied Physics B, 2007, 88(4):499-501.
[9]? Kushawaha V ,? Michael A ,? Major L . Effect of Nd Concentration on the Nd:KGW Laser[J]. APPLIED PHYSICS B LASERS AND OPTICS, 1994.
[10]? Soulard R ,? Zinoviev A ,? Doualan J L , et al. Detailed characterization of pump-induced refractive index changes observed in Nd:YVO(4), Nd:GdVO(4) and Nd:KGW.[J]. Optics Express, 2010, 18(2):1553-68.
[11]? Karlitschek P ,? Hillrichs G . Active and passive Q-switching of a diode pumped Nd:KGW-laser[J]. Applied Physics B, 1996, 64(1):21-24.
[12]? Flood C J ,? Walker D R ,? Driel H . CW diode pumping and FM mode locking of a Nd: KGW laser[J]. Applied Physics B, 1995, 60(2-3):309-312.
[13]? Kalisky Y ,? Kravchik L ,? Labbe C . Repetitive modulation and passively Q-switching of diode-pumped Nd-KGW laser[J]. Optics Communications, 2001, 189(1-3):113-125.
[14] Huang, Jianhong, Lin, et al. Short pulse eye-safe laser with a stimulated Raman scattering self-conversion based on a Nd:KGW crystal.[J]. Optics letters, 2007, 32(9):1096-8.
[15] R Moncorgé,? Chambon B ,? Rivoire J Y , et al. Nd doped crystals for medical laser applications[J]. Optical Materials, 1997, 8(1-2):109-119.
[16]? Halim M ,? Talukder R C ,? Waritanant T , et al. Passive mode-locking of Nd:KGW laser with hot band diode pumping[C]// 2016 Photonics North (PN). Laser Physics Letters, 2016.
[17]? Kushawaha V ,? Yan Y ,? Chen Y . Efficiency of diode-pumped 1.35 m laser from Nd:KGW[J]. Applied Physics B, 1996, 62(5):533-535.
[18]? Musset O ,? Boquillon J P . Flashlamp-pumped Nd:KGW laser at repetition rates up to 50 Hz[J]. Applied Physics B, 1997, 65(1):13-18.
[19] AA Demidovich, VA Lisinetskii, W Kiefer,等. Continuous-wave Raman generation in a diode-pumped Nd~(3+):KGd(WO_(4))_(2) laser.
[20]? Abdolvand A ,? Wilcox K G ,? Kalkandjiev T K , et al. Conical refraction Nd:KGd(WO4)2 laser[J]. Optics Express, 2010, 18(3):2753.
[21]? Yumashev K V ,? Savitski V G ,? Kuleshov N V , et al. Laser performance of N g -cut flash-lamp pumped Nd:KGW at high repetition rates[J]. Applied Physics B, 2007, 89(1):39-43.
[22]? Esmeria J M ,? Ishii H ,? Sato M , et al. Efficient continuous-wave lasing operation of Nd:KGd(WO4)2 at 1.067 μm with diode and Ti:sapphire laser pumping[J]. Optics Letters, 1995, 20(14):1538-40.
[23]? Atanasov P A ,? Tomov R I ,? Perrie?Re J , et al. Growth of Nd:potassium gadolinium tungstate thin-film waveguides by pulsed laser deposition[J]. Appl.phys.lett, 2000, 76(18):2490-2492.
[24]? Major A ,? Langford N ,? Graf T , et al. Diode-pumped passively mode-locked Nd:KGd(WO4)2 laser with 1-W average output power[J]. Optics Letters, 2002, 27(16):1478.
[25]? Stankov K A ,? Marowsky G . High-efficiency multicolor Q-switched Nd3+:KGd(WO4)2 laser[J]. Applied Physics B, 1995, 61(2):213-215.
[26]? Chen Y ,? Major L ,? Kushawaha V . Efficient laser operation of diode-pumped Nd:KGd(WO4)2 crystal at 1.067 μm[J]. Applied Optics, 1996, 35(18):3203-3206.
[27]? Bogdanovich M V ,? Grigor’Ev A V ,? Lantsov K I , et al. A high-power optical parametric oscillator based on a master Nd : KGW laser with a high repetition rate[J]. Quantum Electronics, 2017, 47(4):308-312.

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