Journal of Synthetic Crystals, Volume. 51, Issue 11, 1851(2022)
Morphologies and Formation Mechanisms of the Defects in Gadolinium-Scandium-Aluminum Garnet Single Crystal
[1] [1] LIU G Y, WANG B, LI J K, et al. Research progress of gadolinium aluminum garnet based optical materials[J]. Physica B: Condensed Matter, 2021, 603: 412775.
[3] [3] REN H, DING S J, LI H Y, et al. Growth, structure and upconversion properties of Yb3+ and Er3+ co-doped Gd3Sc2Al3O12 crystal[J]. Journal of Luminescence, 2022, 251: 119149.
[5] [5] CHEN Y Z, ZHANG Q L, HE Y, et al. Diode end-pumped dual-wavelength Er, Pr∶GSAG laser operating at 2 696 and 2 828 nm[J]. Optics & Laser Technology, 2020, 121: 105811.
[6] [6] DING S J, WANG H Y, LIU W P, et al. Enhanced radiation resistant properties of Nd∶GSAG laser crystal by co-doping of Cr3+[J]. Journal of Luminescence, 2019, 213: 249-254.
[7] [7] DING S J, LIU W P, CHEN Y Y, et al. Effects of the gamma-ray irradiation on the structure, spectral and laser damage threshold of Nd∶GSAG crystal[J]. Optical Materials, 2019, 95: 109259.
[8] [8] XU Y N, CHING W Y, BRICKEEN B K. Electronic structure and bonding in garnet crystals Gd3Sc2Ga3O12, Gd3Sc2Al3O12, and Gd3Ga3O12 compared to Y3Al3O12[J]. Physical Review B, 2000, 61(3): 1817-1824.
[9] [9] DING S J, REN H, ZOU Y, et al. Single crystal growth and property investigation of Dy3+ and Tb3+ co-doped Gd3Sc2Al3O12 (GSAG): multiple applications for GaN blue LD pumped all-solid-state yellow lasers and UV or blue light chip excited solid-state lighting[J]. Journal of Materials Chemistry C, 2021, 9(30): 9532-9538.
[10] [10] DING S J, LI H Y, REN H, et al. Ultra-broad absorption band of a Dy3+-doped Gd3Sc2Al3O12 garnet crystal at around 450 nm: a potential crystal for InGaN LD-pumped all-solid-state yellow lasers[J]. CrystEngComm, 2021, 23(32): 5481-5488.
[11] [11] KALLMEYER F, DZIEDZINA M, WANG X, et al. Nd∶GSAG-pulsed laser operation at 943 nm and crystal growth[J]. Applied Physics B, 2007, 89(2): 305-310.
[12] [12] ZAPADLK O, PEJCHAL J, KUCˇERKOV R, et al. Composition-engineered GSAG garnet: single-crystal host for fast scintillators[J]. Crystal Growth & Design, 2021, 21(12): 7139-7149.
[20] [20] MU Q, JIN Z J, HAN X L, et al. Effects of slurry pH on chemical and mechanical actions during chemical mechanical polishing of YAG[J]. Applied Surface Science, 2021, 563: 150359.
[22] [22] ZAZUBOVICH S, LAGUTA V V, MACHEK P, et al. Effect of Li+ co-doping on the luminescence and defects creation processes in Gd3(Ga, Al)5O12∶Ce scintillation crystals[J]. Journal of Luminescence, 2022, 242: 118548.
[27] [27] DING S J, LIU W P, ZHANG Q L, et al. Crystal growth, defects, and mechanical and spectral properties of a novel mixed laser crystal Nd∶GdYNbO4[J].Applied Physics A, 2016, 123(1): 1-7.
[28] [28] HUANG Q, YU D L, XU B, et al. Nanotwinned diamond with unprecedented hardness and stability[J]. Nature, 2014, 510(7504): 250-253.
[29] [29] GAO F M, HE J L, WU E D, et al. Hardness of covalent crystals[J]. Physical Review Letters, 2003, 91(1): 015502.
Get Citation
Copy Citation Text
WANG Beibei, LIU Wenpeng, REN Hao, ZHANG Chuancheng, LIU Hailian, ZOU Yong, DING Shoujun. Morphologies and Formation Mechanisms of the Defects in Gadolinium-Scandium-Aluminum Garnet Single Crystal[J]. Journal of Synthetic Crystals, 2022, 51(11): 1851
Category:
Received: Jul. 27, 2022
Accepted: --
Published Online: Jan. 3, 2023
The Author Email: WANG Beibei (wangbb060821@163.com)
CSTR:32186.14.