KNbO3

KNbO3(鈮酸鉀)晶體(簡稱KN)是非常重要的非線性光學晶體之一。其非線性光學品質因數d2 /n3 ,在所有的氧化物晶體中名列第一,KN的平均折射率為2.2,反射率的理論值為14%,理論透過率為86%。。該晶體化學性質穩定,非線性光學系數大,對半導體860nm激光直接倍頻(101mW)已得到近40mW的430nm藍光。KN晶體由于其特殊的性能,使其成為微激光器這一新用途開發的一個重要環節。藍色激光器的實現是當務之急,而KN晶體正是產生二次諧波,實現藍色激光器的最理想的材料之一。
特點
- 毫秒響應時間;
- 非常低的散射損耗;
- 非線性光學系數大;
- 非線性光學系數高;
- 出色的光折變特性;
- 光照射下的高穩定性;
- 有利的相位匹配特性;
物化性質
化學式 | KNbO3 |
晶體結構 | 斜方,mm2 |
晶格參數 | a = 5.6896?, b = 3.9692?, c = 5.7256? |
質量密度 | 4.617 g/cm3 |
熔點 | 1333 K |
居里溫度 | 498 K |
介電軸和結晶軸的分配 | ?X, Y, Z ? b, a, c |
P = 0.101325MPa時的比熱cp | cp= 767 J/kgK |
導熱系數 | κ > 3.5 W/mK |
熱膨脹 | aa=5.010×10-6 /℃; ab=1.410×10-5/℃; ac=5.010×10-7/℃ |
非線性光學性質
屬性 | 數值 |
非線性光學系數 | d31=-15.8 pm/V, d32=-18.3 pm/V @ 1064 nm |
最短SHG波長 | 425 nm(Ⅰ型NCPM,y切或a切) |
Ⅰ型SHG的接受角為1064 nm | Dq = 0.24 mrad / cm(內部) |
Ⅰ型SHG的接受溫度為1064 nm | DT=0.3 ℃/cm |
線性光學性質
屬性 | 數值 |
透明范圍 | 400-5500 nm |
紅外截止波長 | 5.5 μm |
吸收損失 | <=1%/cm @1064 nm |
損傷閾值 | <= 4 J/cm2 @527 nm(500ps,單脈沖) |
<= 6 J/cm2 @1054 nm(700ps,單脈沖) |
相位匹配角實驗值(T=293K)
相互作用波長[μm] | φexp?[deg] | θexp?[deg] |
XY平面,θ=90° | ||
SHG, e + e???o | ||
0.946???0.473 | ≈30 | ? |
4.7599???2.37995 | 69.9 | ? |
YZ 平面, φ = 90° | ||
SHG, o + o ??e | ||
0.86 ? 0.43 | ? | 83.5 |
0.89 ? 0.445 | ? | 70.7 |
0.92 ? 0.46 | ? | 64 |
0.94 ? 0.47 | ? | 60.5 |
1.0642 ? 0.5321 | ? | 46.4 |
1.3188 ? 0.6594 | ? | 30.6 |
1.3382???0.6691 | ? | 29.7 |
3.5303???1.76515 | ? | 37.3 |
4.7291???2.36455 | ? | 77.3 |
SFG, o + o???e | ||
1.3188 + 0.6594???0.4396 | ? | 62.3 |
1.3188 + 1.0642???0.5889 | ? | 37.7 |
4.7762 + 3.1841???1.9105 | ? | 46.6 |
5.2955 + 3.5303???2.1182 | ? | 59.5 |
XZ 平面, φ = 0°, θ > Vz | ||
SHG, o + o???e | ||
1.0642???0.5321 | ? | 70.4 |
1.3188???0.6594 | ? | 56.8 |
1.3382???0.6691 | ? | 56.2 |
3.5303???1.76515 | ? | 58.8 |
SFG, o + o???e | ||
1.3188 + 1.0642???0.5889 | ? | 62.6 |
5.2955 + 3.5303???2.1182 | ? | 86.1 |
T=295K時溫度帶寬的實驗值
相互作用波長[μm] | θexp?[deg] | ΔT [?C] |
YZ 平面, φ = 90° | ||
SHG, o + o???e | ||
1.0642???0.5321 | 46.4 | 0.39 |
1.3382???0.6691 | 29.7 | 0.59 |
3.5303???1.76515 | 37.1 | 2.3 |
SFG, o + o?? e | ||
5.2955 + 3.5303?? 2.1182 | 59.5 | 2.4 |
XZ平面, φ = 0°, θ >Vz | ||
SHG, o + o?? e | ||
1.0642???0.5321 | 71.4 | 0.77 |
1.3382???0.6691 | 56.2 | 2.2 |
3.5303???1.76515 | 58.1 | 10.1 |
光譜
![]() | ![]() |
KNbO3-相位匹配角的溫度變化 | 室溫下KNbO3的折射率分散 |
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KNbO3-透射光譜 | KNbO3-光學吸收 |
參考文獻
[1]? Baudisch M ,? Hemmer M ,? Pires H , et al. Performance of MgO:PPLN, KTA, and KNbO3 for mid-wave infrared broadband parametric amplification at high average power[J]. Optics Letters, 2014, 39(20):5802-5. |
[2]? Kim J H ,? Yoon C S . Domain switching characteristics and fabrication of periodically poled potassium niobate for second-harmonic generation[J]. Applied Physics Letters, 2002, 81(18):3332-3334. |
[3]? Zysset B ,? Biaggio I ,? Gunter P N . Refractive indices of orthorhombic KNbO3. I. Dispersion and temperature dependence[J]. Journal of the Optical Society of America B, 1992, 9(3). |
[4]? Umemura N ,? Yoshida K ,? Kato K . Phase-Matching Properties of KNbO_3 in the Mid-Infrared[J]. Applied Optics, 1999, 38(6):991-994. |
[5]? Uematsu Y . Nonlinear Optical Properties of KNbO3 Single Crystal in the Orthorhombic Phase[J]. Japanese Journal of Applied Physics, 1974, 13(9):1362-1368. |
[6]? Baumert J C ,? Hoffnagle J ,? Gunter P . Nonlinear Optical Effects In KNbO3 Crystals At AlxGa1_xAs, Dye, Ruby And Nd:YAG Laser Wavelengths.[C]// European Conference on Optics. International Society for Optics and Photonics, 1985. |
[7]? Yoshiguchi T ,? Ota T ,? Adachi N . Crystal Growth of KNbO 3 by Solution-Dropping Method[J]. Materials Science Forum, 2007, 544-545:697-700. |
[8]? Yamanouchi K ,? Wagatsuma Y ,? ODaGawa H , et al. Single crystal growth of KNbO3 and application to surface acoustic wave devices[J]. Journal of the European Ceramic Society, 2001, 21(15):2791-2795. |
[9] Shao-Yi, Yong-Qiang, Zhang, et al. First-principles study of structural, electronic, elastic, and optical properties of cubic KNbO3 and KTaO3 crystals[J]. Physica status solidi, B. Basic research, 2017, 254(5). |
[10]? Grabowska E . Selected perovskite oxides: Characterization, preparation and photocatalytic properties—A review[J]. Applied Catalysis B Environmental, 2016, 186:97-126. |
[11]? Comes R ,? Lambert M ,? Guinier A . The chain structure of BaTiO3 and KNbO3[J]. Solid State Communications, 1968, 6(10):715-719. |
[12]? Zgonik M ,? Schlesser R ,? Biaggio I , et al. Materials constants of KNbO3 relevant for electro- and acousto-optics[J]. Journal of Applied Physics, 1993, 74(2):1287-1297. |
[13] MD Fontana,? Metrat G ,? Servoin J L , et al. Infrared spectroscopy in KNbO3 through the successive ferroelectric phase transitions[J]. Journal of Physics C Solid State Physics, 1984, 17(3):483-514. |
[14] A, Magrez, E, et al. Growth of Single-Crystalline KNbO3 Nanostructures.[J]. ChemInform, 2006, 37(15):no-no. |
[15]? Tennery V J ,? Hang K W . Thermal and X‐Ray Diffraction Studies of the NaNbO3KNbO3 System[J]. Journal of Applied Physics, 1968, 39. |
[16] Wu, Xing, and, et al. Progress in KNbO3 crystal growth[J]. Journal of Crystal Growth, 1986, 78(3):431-437. |
[17]? Baumert J C , P Günter,? Melchior H . High Efficiency Second Harmonic Generation in KNbO3 Crystals[J]. Optics Communications, 1983, 48(3):215-220. |
[18]? Currat R ,? Comes R ,? Dorner B , et al. Inelastic neutron scattering in orthorhombic KNbO3[J]. Journal of Physics C:Solid State Physics, 1974. |
[19]? Matthews D G ,? Conroy R S ,? Sinclair B D , et al. Blue microchip laser fabricated from Nd:YAG and KNbO3[J]. Optics Letters, 1996, 21(3):198-200. |
[20]? Krakauer H ,? Yu R ,? Wang C Z , et al. Dynamic local distortions in KNbO3[J]. Journal of Physics Condensed Matter, 1999, 11(18):3779. |
[21] U, Flückiger, and, et al. On the preparation of pure, doped and reduced KNbO3 single crystals[J]. Journal of Crystal Growth, 1978. |
[22]? Yang Y ,? Jung J H ,? Yun B K , et al. Flexible pyroelectric nanogenerators using a composite structure of lead-free KNbO(3) nanowires.[J]. Advanced Materials, 2012, 24(39):5357-5362. |
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