光子学报, 2016, 45 (8): 0816001, 网络出版: 2016-09-12  

Se改良的远红外Te基硫系玻璃

Se Improved Far-infrared Te-based Chalcogenide Glass
潘章豪 1,2,*王训四 1,2廖方兴 1,2孙礼红 1,2刘硕 1,2赵浙明 1,2,3刘自军 1,2密楠 1,4吴波 1,2江岭 1,2章向华 5
作者单位
1 宁波大学 高等技术研究院 红外材料及器件实验室, 浙江 宁波 315211
2 浙江省光电探测材料及器件重点实验室, 浙江 宁波 315211
3 嘉兴学院, 浙江 嘉兴 314001
4 浙江省光电探测材料及器件重点实验室, 浙江 宁波 315211,
5 Laboratory of glasses and Ceramics, UMR 6226 CNRS-University of Rennes 1, Rennes Cedex 135042, France
摘要
将成玻性良好的Se逐步掺入到远红外Ge-As-Te玻璃中, 观察其物理、光学特性的渐变过程.采用传统熔融淬冷法制备Ge10As40Te50-xSex(x=0,10,20,30,40,50)系列玻璃, 用X射线衍射仪、Raman光谱仪、热膨胀仪测试玻璃的内部微观结构和物化性质;用傅里叶红外光谱仪、分光光度计测试玻璃的可见/近红外与红外透射光谱等频谱性质;利用经典Tauc方程估算玻璃样品的直接和间接带隙.测试结果表明:Se含量的增加能有效提高玻璃的热稳定性, 最高玻璃转化温度可达到233℃;可见/近红外短波截止边发生蓝移, 光学带隙增大, 透过范围广且透过性良好, 红外透过率最高可达到56%, 红外截止边仍然保持在20 μm, 当Se含量配比在低于2 mol的情况下, 其热稳定性改善明显但光谱变化最小.最后, 讨论了一种加还原剂Mg对该类玻璃进行提纯的方案, 实验表明提纯后玻璃的透过谱线均匀平滑且无明显杂质峰.
Abstract
Se with good glass formation ability was gradually doped into the Ge-As-Te glasses, and then the gradual change processes of some key physical and optical properties were observed. A series of Ge10As40Te50-xSex(x=0, 10, 20, 30, 40, 50) chalcogenide glass samples were prepared by the traditional melt-quenching method. The internal microstructure, physical and chemical properties of the glass samples were analyzed by using X-ray diffraction, Raman spectroscopy and thermal dilatometer instruments. Vis-NIR absorption spectra and infrared optical transmission spectra of these glasses were recorded with Spectrophotometer and Fourier transform infrared spectroscopy instrument. Then, the Tauc equation was adopted to calculate the direct and indirect optical band gaps of the glass samples. The results show that with the increasing of the Se, the thermal stability can be effectively improved, the maximum Tg can reach up to 233 ℃. A obvious blue shift of short infrared absorption spectrum cut-off edge appearance is observed in these glasses, i.e. The optical band gap increases gradually, which shows a wider range of transmission and better transparency spectrum, the maximum transmission rate can reach up to 56%. Infrared cut-off edge remains at 20μm, while Se content is less than 2 mol, its thermal stability is improved obviously and the optical spectral changes little. At last, using metal Mg as an oxide redactor for the purification of these glasses, the results show that the transmission spectra is much smooth and without any obvious impurity absorption peaks after the appropriate purification process.
参考文献

[1] WANG X, NIE Q, WANG G, et al. Investigations of Ge-Te-AgI chalcogenide glass for far-infrared application[J]. Spectrochimica Acta Part A Molecular & Biomolecular Spectroscopy, 2012, 86(4):586-589.

[2] 程辞, 王训四, 徐铁峰, 等. 远红外Ge-Ga-Te-Ag硫系玻璃性能研究[J]. 光子学报, 2015, 44(11):31-35.

    CHENG Ci, WANG Xun-si, XU Tie-feng, et al. Research on properties of far infrared Ge-Ga-Te-Ag chalcogenide glass[J]. Acta Photonica Sinica, 2015, 44(11):31-35.

[3] 吕社钦, 吴越豪, 路来伟,等.Er3+掺杂硫系玻璃微球在980 nm激光泵浦下的荧光特性[J]. 发光学报, 2014,35(4): 454-459.

    L She-qin, WU Yue-hao, LU Lai-wei, et al.Fluorescent characteristics of Er3+ doped chalcogenide glass microsphere under 980 nm LD pumping[J]. Chinese Journal of Luminescence, 2014,35(4): 454-459.

[4] DANTO S, HOUIZOT P, BOUSSARD-PLEDEL C, et al. A family of far-infrared-transmitting glasses in the Ga-Ge-Te system for space applications[J]. Advanced Functional Materials, 2006, 16(14):1847-1852.

[5] 程辞, 王训四, 徐铁峰, 等. 远红外Ge-Te-I高卤硫系玻璃的制备及其光学性能的研究[J]. 光子学报, 2015, 44(02):106-111.

    CHENG Ci, WANG Xun-si, XU Tie-feng, et al. Research on preparation and optical properties of far infrared Ge-Te-I chalcohalide glasses with high halogen[J]. Acta Photonica Sinica, 2015, 44(02):106-111.

[6] YAN F, ZHU T, ZHAO X, et al. A study of the crystallization kinetics of Ge-Te amorphous systems[J]. Journal of University of Science & Technology Beijing Mineral Metallurgy Material, 2007, 14(07):64-67.

[7] WILHELM A A, BOUSSARD-PL DEL C, COULOMBIER Q, et al. Development of far-infrared-transmitting Te based glasses suitable for carbon dioxide detection and space optics[J]. Advanced Materials, 2007, 19(22):3796-3800.

[8] 聂秋华, 王国祥, 王训四, 等. Ga对新型远红外Te基硫系玻璃光学性能的影响[J]. 物理学报, 2010, 59(11):7949-7955.

    NIE Qiu-hua, WANG Guo-xiang, WANG Xun-si, et al. Effect of Ga on optical properties of novel Te-based far infrared transmitting chalcogenide glasses[J]. Acta Physica Sinica, 2010, 59(11):7949-7955.

[9] ALDON L, DELI M L, LIPPENS P E, et al. Thermal stability of some glassy compositions of the Ge-As-Te ternary[J]. Chalcogenide Letters, 2010, 7(3):187-196.

[10] CHUNG S, KIM H C, LEE S, et al. The effect of carrier density on magnetic anisotropy of the ferromagnetic semiconductor (Ga, Mn)As[J]. Solid State Communications, 2009, 149(41-42):1739-1742.

[11] EL-SAYED S M, SAAD H M, AMIN G A, et al. Physical evolution in network glasses of the Ag-As-Te system[J]. Journal of Physics & Chemistry of Solids, 2007, 68(5):1040-1045.

[12] DAI S, WANG G, NIE Q, et al. Effect of CuI on the formation and properties of Te-based far infrared transmitting chalcogenide glasses[J]. Infrared Physics & Technology, 2010, 53(5):392-395.

[13] EL-ZAIAT S Y, EL-DEN M B, EL-KAMEESY S U, et al. Spectral dispersion of linear optical properties for Sm2O3 doped B2O3-PbO-Al2O3 glasses[J]. Optics & Laser Technology, 2012, 44(44):1270-1276.

[14] XIA F, BACCARO S, ZHAO D, et al. Gamma ray irradiation induced optical band gap variations in chalcogenide glasses[J]. Nuclear Instruments & Methods in Physics Research, 2005, 234(4):525-532.

[15] TIKHOMIROV V K, FURNISS D, SEDDON A B, et al. Glass formation in the Te-enriched part of the quaternary Ge-As-Se-Te system and its implication for mid-infrared optical fibres[J]. Infrared Physics & Technology, 2004, 45(2):115-123.

[16] VIGREUX-BERCOVICI C, BONHOMME E, PRADEL A. Te-rich Ge-As-Se-Te bulk glasses and films for future IR-integrated optics[J]. Journal of Non-Crystalline Solids, 2007, 353(13):1388-1391.

[17] 朱敏鸣, 王训四, 徐会娟, 等. 新型远红外Ge-Ga-Te-KBr硫系玻璃性能研究[J]. 光子学报, 2014, 43(06):53-57.

    ZHU Min-ming, WANG Xun-si, XU Hui-juan, et al. Novel Ge-Ga-Te-KBr far-infrared-transmitting chalcogenide glasses system[J]. Acta Photonica Sinica, 2014, 43(06):53-57.

[18] SHIRYAEV V S, VELMUZHOV A P, TANG Z Q, et al. Preparation of high purity glasses in the Ga-Ge-As-Se system[J]. Optical Materials, 2014, 37(18-23).

[19] SHIRYAEV V S, CHURBANOV M F, DIANOV E M, et al. Recent progress in preparation of chalcogenide As-Se-Te glasses with low impurity content[J]. Journal of Optoelectronics & Advanced Materials, 2005, 7(4):1773-1779.

[20] TROLES J, SHIRYAEV V, CHURBANOV M, et al. GeSe 4 glass fibres with low optical losses in the mid-IR[J]. Optical Materials, 2009, 32(1):212-215.

[21] ANDRIKOPOULOS K S, YANNOPOULOS S N, KOLOBOV A V, et al. Raman scattering study of GeTe and Ge 2 Sb 2 Te 5 phase-change materials[J]. Journal of Physics & Chemistry of Solids, 2007, 68(5-6):1074-1078.

[22] SUN J, NIE Q, WANG X, et al. Structural investigation of Te-based chalcogenide glasses using Raman spectroscopy[J]. Infrared Physics & Technology, 2012, 55(4):316-319.

[23] SEN S, GJERSING E L, AITKEN B G. Physical properties of GexAs2xTe100-3x glasses and Raman spectroscopic analysis of their short-range structure[J]. Journal of Non-Crystalline Solids, 2010, 356(41-42):2083-2088.

潘章豪, 王训四, 廖方兴, 孙礼红, 刘硕, 赵浙明, 刘自军, 密楠, 吴波, 江岭, 章向华. Se改良的远红外Te基硫系玻璃[J]. 光子学报, 2016, 45(8): 0816001. PAN Zhang-hao, WANG Xun-si, LIAO Fang-xing, UN Li-hong, LIU Shuo, ZHAO Zhe-ming, LIU Zi-jun, MI Nan, WU Bo, JIANG Ling, ZHANG Xiang-hua. Se Improved Far-infrared Te-based Chalcogenide Glass[J]. ACTA PHOTONICA SINICA, 2016, 45(8): 0816001.

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!