Er:YAP

Er:YAP具有3μm的大發(fā)射截面,是Er:YAG的三倍大。 高摻雜的Er:YAP可以發(fā)射2.73μm 波長(zhǎng)的激光,低摻雜的Er:YAP晶體可以發(fā)射1.66μm 的激光。Er:YAP晶體的發(fā)射光譜和激發(fā)光譜顯示出在人眼安全區(qū)域內(nèi)有較寬的發(fā)射帶,其峰值在1545nm和1608nm附近,并且泵浦帶適用于常見(jiàn)的800nm和970nm二極管激光器,這表明YAP是一種 1.5μm人眼安全范圍內(nèi)的二極管泵浦激光器的候選晶體。與YAG相比,釔鈣鈦礦鋁(YAP)由于具有較高的導(dǎo)熱率(~13.3 W m-1 K-1),良好的機(jī)械性能和較低的光子能量,有望成為有效激光發(fā)射的基質(zhì)材料。 而且,Er:YAP是最有前途的激光材料之一,可以提供高功率的中紅外相干光束。
特點(diǎn)
- 更高的熱導(dǎo)率
- 較低的光子能量
- 良好的機(jī)械性能
- 豐富的能級(jí)結(jié)構(gòu)
- 高摻雜濃度
物理和化學(xué)特性
化學(xué)公式 | Er:YAlO3 |
晶體結(jié)構(gòu) | 斜方晶體-Pbnm |
分子質(zhì)量 | 163.884 |
外形 | 半透明結(jié)晶固體 |
方向 | b軸-Pbnm |
熔點(diǎn) | 1870 °C |
密度 | 5.35 g/cm3 |
比熱容 | 0.557 J/g·K |
導(dǎo)熱系數(shù) | 11.7 W/m·K (a-axis), 10.0 W/m·K (b-axis), 13.3 W/m·K (c-axis) |
熱膨脹系數(shù) | 2.32 x 10-6??K-1?(a-axis), 8.08 x 10-6??K-1?(b-axis), 8.7 x 10-6??K-1??(c-axis) |
精確質(zhì)量 | 163.872 g/mol |
單同位素質(zhì)量 | 163.872 g/mol |
光學(xué)和光譜性質(zhì)
激光躍遷 | 4S3/2→4I9/2 | 4I11/2→4I13/2 |
激光波長(zhǎng) | 1.66 μm | 2.73 μm |
泵浦帶 | 0.6-0.8 μm | 1.53 μm |
發(fā)射截面 | 3 μm | |
折射率 | 1.94-1.97 (@ 632.8 nm) |
吸收和發(fā)射光譜
![]() | ![]() |
---|
參考文獻(xiàn)
[1] H Jelínková, M Němec, J ?ulc, et al. 1.6 μm Er:YAP and Er:YAG lasers resonantly pumped by Er:glass laser[J]. Laser Physics, 2009, 19(8):1828-1831. |
[2]? Cong Q , D Sun,? Luo J , et al. 27 μm dual-wavelength laser performance of LD end-pumped Er:YAP crystal[J]. Optics Express, 2018, 26(22):28421. |
[3] Hiroki, Kawase, Ryo, et al. 2.92-μm high-efficiency continuous-wave laser operation of diode-pumped Er:YAP crystal at room temperature.[J]. Optics Express, 2019. |
[4] Yongjun, Dong, Jun, et al. Color centers in gamma-irradiated YAP crystals grown by the Czochralski method[J]. Physica Status Solidi, 2007. |
[5] [ Miroslav Jelinek, A Klini, C Grivas,等. Deposition of Er:YAG (YAP) layers by subpicosecond and nanosecond KrF excimer laser ablation[J]. Applied Surface Science, 2002. |
[6]? Dong Q ,? Zhao G ,? Cao D , et al. Growth and anisotropic spectral properties of Er:YAlO3 crystal[J]. Journal of Alloys & Compounds, 2010, 493(1-2):661-665. |
[7] M Jelínek. Growth of optical waveguides by pulsed laser deposition[J]. Laser Physics, 2009, 19(2):265-273. |
[8]? Cong Q , D Sun,? Luo J , et al. Growth, structure and spectroscopic properties of Er,Pr:YAP laser crystal[J]. Optical Materials, 2018, 84:59-65. |
[9]? Yao W ,? Uehara H ,? Kawase H , et al. Highly efficient Er:YAP laser with 6.9 W of output power at 2920 nm[J]. Optics Express, 2020. |
[10]? Remsa J ,? Jelinek M ,? Kocourek T , et al. Highly oriented crystalline Er:YAG and Er:YAP layers prepared by PLD and annealing[J]. Applied Surface Science, 2009, 255(10):5292-5294. |
[11]? Basavalingu B ,? Vijaya Kumar M S ,? Girish H N , et al. Hydrothermal synthesis and characterization of rare earth doped yttrium aluminium perovskite – R:YAlO3 (R=Nd, Eu & Er)[J]. Journal of Alloys & Compounds, 2013, 552:382-386. |
[12]? Perner B ,? Kvapil J ,? Kvapil J . Hydroxil and iron ions in YAP: Er laser crystals[J]. Czechoslovak Journal of Physics, 1992, 42(1):103-109. |
[13]? Stankov K A ,? Hamal K ,? Jelinkova H , et al. Mode-locking of the 1.66 m transition of an Er:YAlO~3 laser[J]. OPTICS COMMUNICATIONS, 1993, 95(1):85-85. |
[14] Yuchong, Ding, and,等. Near-infrared emission bands of Er3+-doped YAP and LSO crystals[J]. Journal of Luminescence, 2011. |
[15]? Kawase H ,? Uehara H ,? Chen H , et al. Passively Q-switched 2.9 μm Er:YAP single crystal laser using graphene saturable absorber[J]. Applied Physics Express, 2019, 12(10):102006-. |
[16]? Jelinek M ,? Klini A ,? Oswald J , et al. Properties of Er – doped layers grown from Er: YAG (YAP) crystalline targets by sub-picosecond laser deposition (p248-252)[J]. Laser Physics Letters, 2010, 1(5):-. |
[17]? Yao B Q ,? Liu X L ,? Yu L X , et al. Resonantly pumped continuous wave Er:YAP laser[J]. Laser Physics, 2012, 22(4):671-672. |
[18]? Nemec M ,? Jelinkova H ,? Sulc J , et al. Resonantly pumped Er:YAG and Er:YAP lasers[C]// European Conference on Lasers & Electro-optics & the European Quantum Electronics Conference Cleo Europe-eqec. IEEE, 2009. |
[19]? Yao B Q ,? Liu X L ,? Yu L X , et al. Resonantly pumped multiwavelength operation in Er:YAP[J]. Laser Physics, 2012, 22(5):842-844. |
[20]? Zhang B ,? Wang Y ,? Wei Z , et al. Spectroscopic properties analyses and laser characterization simulation of Er3+,Eu3+:YAP single crystal.[J]. Spectrochimica Acta Part A Molecular & Biomolecular Spectroscopy, 2018:S1386142518306115-. |
[21]? Tkalcec A ,? Probst S ,? Rieger D , et al. Strong coupling of an Er3+ doped YAlO3 crystal to a superconducting resonator[J]. Phys.rev.b, 2014, 90(7). |
[22] Němec, M, ?ulc, J, ?vejkar, R, et al. Temperature influence on Er:YAlO 3 spectroscopy and diode-pumped laser properties[J]. Laser Physics, 2018, 28(10). |
[23] Yao,? Wen W . Thermoluminescence Properties of Doped YAP Crystals[J]. Advanced Materials Research, 2015, 1104:143-148. |
[24]? Duan C K ,? Tanner P A ,? Makhov V N , et al. Vacuum ultraviolet spectra and crystal field analysis of YAlO3 doped with Nd3+ and Er3+. phys.rev.b, 2007. |
[25]? Arutiunian S M ,? Kostanian R B ,? Petrosian A G , et al. A YAlO3:Er(3+)-crystal laser[J]. Kvantovaia Elektronika Moscow, 1987. |
如果你對(duì)我們的Er:YAP感興趣,請(qǐng)聯(lián)系我們獲取價(jià)格或申請(qǐng)樣品。
與Er:YAP相關(guān)的文章:
暫無(wú)與本產(chǎn)品相關(guān)的文章,請(qǐng)?jiān)L問(wèn)芯飛睿的文章頁(yè)面播放其他文章。
與Er:YAP相關(guān)的案例:
與Er:YAP相關(guān)的解決方案:
暫無(wú)與本產(chǎn)品相關(guān)的解決方案,請(qǐng)?jiān)L問(wèn)芯飛睿的解決方案頁(yè)面了解其他解決方案。
與Er:YAP相關(guān)的視頻: