Acta Optica Sinica, Volume. 40, Issue 12, 1223001(2020)
Study of Optical Properties of High-Q GaN Disk-Shaped Microresonant Cavity
[1] Wu J, Walukiewicz W, Yu K M et al. Superior radiation resistance of In1-xGaxN alloys: full-solar-spectrum photovoltaic material system[J]. Journal of Applied Physics, 94, 6477-6482(2003).
[2] Flack T J, Pushpakaran B N, Bayne S B. GaN technology for power electronic applications: a review[J]. Journal of Electronic Materials, 45, 2673-2682(2016).
[3] Wang Y P, Wang X H, Wang P. Identifying single cell types via whispering gallery mode optical microcavities[J]. Chinese Journal of Lasers, 47, 0207028(2020).
[4] Zhu G Y, Li J P, Li J T et al. Single-mode ultraviolet whispering gallery mode lasing from a floating GaN microdisk[J]. Optics Letters, 43, 647-650(2018).
[5] Gwo S, Shih C K. Semiconductor plasmonic nanolasers: current status and perspectives[J]. Reports on Progress in Physics, 79, 086501(2016).
[6] Wang M H, Zhu G P, Zhu H Q et al. Morphology-dependent WGMs photoluminescence characteristics from micro/nano-structural ZnO samples[J]. Acta Optica Sinica, 34, s116001(2014).
[7] Czekalla C, Sturm C, Schmidt-Grund R et al. Whispering gallery mode lasing in zinc oxide microwires[J]. Applied Physics Letters, 92, 241102(2008).
[8] Shubina T V, Pozina G, Jmerik V N et al. III-nitride tunable cup-cavities supporting quasi whispering gallery modes from ultraviolet to infrared[J]. Scientific Reports, 5, 17970(2016).
[9] Yu N S, Dong D P, Qi Y et al. Synthesis of hexagonal ZnO microdisk on InN substrate by aqueous method and its optical properties[J]. Journal of Materials Science: Materials in Electronics, 27, 10468-10472(2016).
[10] Baek H, Lee C H, Chung K et al. Epitaxial GaN microdisk lasers grown on graphene microdots[J]. Nano Letters, 13, 2782-2785(2013).
[11] Sellés J, Brimont C, Cassabois G et al. Deep-UV nitride-on-silicon microdisk lasers[J]. Scientific Reports, 6, 21650(2016).
[12] Qi L, Xu Y, Li Z Y et al. Stress analysis of transferable crack-free gallium nitride microrods grown on graphene/SiC substrate[J]. Materials Letters, 185, 315-318(2016).
[13] Liu H T, Zhang H L, Dong L et al. Growth of GaN micro/nanolaser arrays by chemical vapor deposition[J]. Nanotechnology, 27, 355201(2016).
[14] Xu Y, Cao B, He S Y et al. Evolution of threading dislocations in GaN epitaxial laterally overgrown on GaN templates using self-organized graphene as a nano-mask[J]. Applied Physics Letters, 111, 102105(2017).
[15] Bhowmik A K. Polygonal optical cavities[J]. Applied Optics, 39, 3071-3075(2000).
[16] Zhang Y Y, Feng C, Wang T et al. GaN hemispherical micro-cavities[J]. Applied Physics Letters, 108, 031110(2016).
[17] Wang D Q, Zhu T T, Oliver R A et al. Ultra-low-threshold InGaN/GaN quantum dot micro-ring lasers[J]. Optics Letters, 43, 799-802(2018).
[18] Yu D S, Chen Y J, Li B J et al. Stuctural and lasing characteristics of ultrathin hexagonal ZnO nanodisks grown vertically on silicon-on-insulator substrates[J]. Applied Physics Letters, 91, 091116(2007).
[19] Gu H, Ren G Q, Zhou T F et al. Study of optical properties of bulk GaN crystals grown by HVPE[J]. Journal of Alloys and Compounds, 674, 218-222(2016).
Get Citation
Copy Citation Text
Geng He, Yu Xu, Bing Cao, Qinhua Wang, Ke Xu. Study of Optical Properties of High-Q GaN Disk-Shaped Microresonant Cavity[J]. Acta Optica Sinica, 2020, 40(12): 1223001
Category: Optical Devices
Received: Feb. 21, 2020
Accepted: Mar. 23, 2020
Published Online: Jun. 3, 2020
The Author Email: Xu Yu (yxu2007@sinano.ac.cn), Cao Bing (bingcao@suda.edu.cn)