• Frontiers of Optoelectronics
  • Vol. 9, Issue 1, 106 (2016)
Chuan WANG, Xiaoying LIU*, Peng ZHOU, Peng LI, and Jia DU
Author Affiliations
  • School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan 430074, China
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    DOI: 10.1007/s12200-015-0472-4 Cite this Article
    Chuan WANG, Xiaoying LIU, Peng ZHOU, Peng LI, Jia DU. Dispersion of double-slot microring resonators in optical buffer[J]. Frontiers of Optoelectronics, 2016, 9(1): 106 Copy Citation Text show less
    References

    [1] Willner A E, Zhang L, Yang J Y. Micro-resonator devices and optical broadband access application. In: Proceedings of the International Society for Optics and Photonics, (OPTO). 2011, 795803

    [2] Bogaerts W, De Heyn P, Van Vaerenbergh T, De Vos K, Kumar Selvaraja S, Claes T, Dumon P, Bienstman P, Van Thourhout D, Baets R. Silicon microring resonators. Laser & Photonics Reviews, 2012, 6(1): 47–73

    [3] Xia F, Sekaric L, Vlasov Y. Ultracompact optical buffers on a silicon chip. Nature Photonics, 2007, 1(1): 65–71

    [4] Cao T T, Zhang L B, Fei Y H, Cao Y M, Lei X, Chen S W. Design of a high-speed silicon electro-optical modulator based on an adddrop micro-ring resonator. Acta Physica Sinica, 2013, 62(19): 194210 (in Chinese)

    [5] Zhang X, Li Z Q, Tong K. A cross bus single microring electrooptical switch with U bend waveguide. Acta Physica Sinica, 2014, 63(9): 094207 (in Chinese)

    [6] Ren G H, Chen S W, Cao T T. Theoretical analysis of a thermaloptical tunable filter based on Vernier effect of cascade microring resonators. Acta Physica Sinica, 2012, 61(3): 034215 (in Chinese)

    [7] Fontaine N K, Yang J, Pan Z, Chu S, Chen W, Little B E, Ben Yoo S. Continuously tunable optical buffering at 40 Gb/s for optical packet switching networks. Journal of Lightwave Technology, 2008, 26 (23): 3776–3783

    [8] Shinobu F, Ishikura N, Arita Y, Tamanuki T, Baba T. Continuously tunable slow-light device consisting of heater-controlled silicon microring array. Optics Express, 2011, 19(14): 13557–13564

    [9] Morichetti F, Melloni A, Breda A, Canciamilla A, Ferrari C, Martinelli M. A reconfigurable architecture for continuously variable optical slow-wave delay lines. Optics Express, 2007, 15 (25): 17273–17282

    [10] Boeck R, Chrostowski L, Jaeger N A. Thermally tunable quadruple Vernier racetrack resonators. Optics Letters, 2013, 38(14): 2440– 2442

    [11] Khurgin J B. Optical buffers based on slow light in electromagnetically induced transparent media and coupled resonator structures: comparative analysis. Journal of the Optical Society of America B, 2005, 22(5): 1062–1074

    [12] Poon J K, Scheuer J, Xu Y, Yariv A. Designing coupled-resonator optical waveguide delay lines. Journal of the Optical Society of America B, 2004, 21(9): 1665–1673

    [13] Poon J K, Zhu L, DeRose G A, Yariv A. Transmission and group delay of microring coupled-resonator optical waveguides. Optics Letters, 2006, 31(4): 456–458

    [14] Cooper M L, Gupta G, Schneider M A, Green W M, Assefa S, Xia F, Gifford D K, Mookherjea S. Waveguide dispersion effects in silicon-on-insulator coupled-resonator optical waveguides. Optics Letters, 2010, 35(18): 3030–3032

    [15] Almeida V R, Xu Q, Barrios C A, Lipson M. Guiding and confining light in void nanostructure. Optics Letters, 2004, 29(11): 1209–1211

    [16] Sun R, Dong P, Feng N N, Hong C Y, Michel J, Lipson M, Kimerling L. Horizontal single and multiple slot waveguides: optical transmission at l= 1550 nm. Optics Express, 2007, 15(26): 17967–17972

    [17] Yu P, Qi B, Jiang X,Wang M, Yang J. Ultrasmall-V high-Q photonic crystal nanobeam microcavities based on slot and hollow-core waveguides. Optics Letters, 2011, 36(8): 1314–1316

    [18] Zhang L, Yue Y, Xiao-Li Y, Wang J, Beausoleil R G, Willner A E. Flat and low dispersion in highly nonlinear slot waveguides. Optics Express, 2010, 18(12): 13187–13193

    [19] Bao C, Yan Y, Zhang L, Yue Y, Willner A E. Tailoring of low chromatic dispersion over a broadband in silicon waveguides using a double-slot design. In: Proceedings of CLEO: QELS_Fundamental Science. 2013, JTu4A.53

    [20] Yan Y, Matsko A, Bao C, Maleki L, Willner A E. Increasing the spectral bandwidth of optical frequency comb generation in a microring resonator using dispersion tailoring slotted waveguide. In: Proceedings of IEEE Photonics Conference (IPC). 2013, 230–231

    [21] Zhu M, Liu H, Li X, Huang N, Sun Q, Wen J, Wang Z. Ultrabroadband flat dispersion tailoring of dual-slot silicon waveguides. Optics Express, 2012, 20(14): 15899–15907

    [22] Sanchis P, Blasco J, Martínez A, Martí J. Design of silicon-based slot waveguide configurations for optimum nonlinear performance. Journal of Lightwave Technology, 2007, 25(5): 1298–1305

    [23] Keivani H, Kargar A. Bending efficiency of bent multiple-slot waveguides. Chinese Physics Letters, 2009, 26(12): 124204

    Chuan WANG, Xiaoying LIU, Peng ZHOU, Peng LI, Jia DU. Dispersion of double-slot microring resonators in optical buffer[J]. Frontiers of Optoelectronics, 2016, 9(1): 106
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