Search

Article

x

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

Simulation analysis of micro-ring resonator based on diamond multilayer waveguide structure

Li Zhi-Quan Bai Lan-Di Gu Er-Dan Xie Rui-Jie Liu Tong-Lei Niu Li-Yong Feng Dan-Dan Yue Zhong

Citation:

Simulation analysis of micro-ring resonator based on diamond multilayer waveguide structure

Li Zhi-Quan, Bai Lan-Di, Gu Er-Dan, Xie Rui-Jie, Liu Tong-Lei, Niu Li-Yong, Feng Dan-Dan, Yue Zhong
PDF
Get Citation

(PLEASE TRANSLATE TO ENGLISH

BY GOOGLE TRANSLATE IF NEEDED.)

  • With the development of the technology for fabricating high-quality synthetic diamond and diamond waveguide structures, more and more researchers are being involved in exploring the particular optical properties of diamond for different applications. Because of its high refractive index and nontoxicity to biological species, diamond can be used to make micro-ring resonator to detect the concentration of liquid or gas. In this paper, a single micro-ring resonator model with diamond serving as the core layer is proposed. In the model, the vertical-section of the waveguide adopts a five-layer ridge-type waveguide structure based on As2S3, SiO2 and diamond, i.e. As2S3-SiO2-Diamond-SiO2-As2S3. To investigate the optical properties of the resonator, the vertical-section of the single straight waveguide, the coupling region of the direct waveguide, and the ring waveguide are simulated with the adopted operating wavelength =1550 nm based on the coupling mode theory and micro-ring resonance theory. In addition, the distribution of the field strength for the micro-ring is described at a resonant wavelength of 1543 nm. It is very important to explore the field intensity distribution of the micro-ring for understanding how the light transmits. The transmission characteristics of the micro-ring with the change of the distance between the straight waveguide and the ring waveguide in the coupling region are also simulated. The quality factor and the influence of the coupling coefficient change on the output spectrum are studied by the transfer matrix method and the micro-ring loss is discussed. It is shown that the micro-ring resonator designed with the diamond material has good transmission characteristics. When the resonant wavelength is 1543 nm, the resonant peak reaches more than -12 dB. The quality factor is about 1.54105. When the coupling coefficient k is 0.01, the free spectral range is about 40 nm. The coupling coefficient k is determined by the distance S of the coupling region. The results show that when S is equal to 50 nm, the output spectrum has a good extinction ratio and is better compared with the other values. The error of material processing is mainly affected by size, so the output spectrum near the distance S=50 nm is studied. The result shows that in the tiny change scope, the spectral output peak is linearly related to S. The structure we suggested in this paper expands the application scope of diamond in the field of optics, and provides some guiding significance for developing the optical integrated chips.
      Corresponding author: Bai Lan-Di, lzq54@ysu.edu.cn
    • Funds: Project supported by the Natural Science Foundation of Hebei Province, China (Grant No. F2017203316).
    [1]

    Chin M K, Ho S T 1998 J. Lightwave Technol. 16 1433

    [2]

    Hong J X, Liu Y, Chen W 2014 J. Optoelectr. Laser 25 1668 (in Chinese)[洪建勋, 刘莹, 陈伟2014光电子激光25 1668]

    [3]

    Dong P, Shafiiha R, Liao S, Liang H, Feng N N, Feng D Z, Li G L, Zheng X Z, Krishnamoorthy A V, Khiavi M A 2010 Opt. Express 18 10941

    [4]

    Wang W, Zhang A H, Yang K, Yang L J, Feng S J, Wang Z 2013 Infrared Laser Eng. 42 2162 (in Chinese)[王巍, 张爱华, 杨铿, 杨丽君, 冯世娟, 王振2013红外与激光工程42 2162]

    [5]

    Tian H, Zhang Y D, Qi D W, Su R Z, Bai Y, Xu Q 2016 Chin. Phys. B 25 064204

    [6]

    Zhang X, Li Z Q, Tong K 2014 Acta Phys. Sin. 63 094207 (in Chinese)[张鑫, 李志全, 童凯2014物理学报63 094207]

    [7]

    Lin X S, Huang X G 2008 Opt. Lett. 33 2874

    [8]

    Liu J Q, Wang L, He M D, Huang W Q, Wang D Y, Zou B S, Wen S H 2008 Opt. Express 16 4888

    [9]

    Tao J, Huang X G, Lin X S, Zhang Q, Jin X P 2009 Opt. Express 17 13989

    [10]

    Lin X, Huang X 2009 Opt. Soc. Am. B 26 1263

    [11]

    Gong Y K, Wang L R, Hu X H, Li X H, Liu X M 2009 Opt. Express 17 13727

    [12]

    Tao J, Huang X G, Lin X S, Chen J H, Zhang Q, Jin X P 2010 Opt. Soc. Am. B 27 323

    [13]

    Vermeulen N, Sipe J E, Helt L G, Thienpont H 2012 Laser Photon. Rev. 6 793

    [14]

    Jiang X Q, Li G Y, Wei Y X, Yang J Y, Wang M H 2011 National 15th Optical Fiber Communication and the 16th Annual Meeting of Integrated Optics Xi' an June 26, 2011 p1

    [15]

    Lin Q, Zhang J D, Fauchet P M, Agrawal G P 2006 Opt. Express 14 4786

    [16]

    Jin L 2012 Ph. D. Dissertation (Zhejiang:Zhejiang University) (in Chinese)[金磊2012博士学位论文(浙江:浙江大学)]

    [17]

    Guo J P, Adato R 2008 Opt. Express 16 1232

    [18]

    Li Z Q, An D Y, Zhang X, Zhao L L, Sha X P, Guo S L, Li W C 2015 Spectrosc. Spect. Anal. 35 2660(in Chinese)[李志全, 安东阳, 张鑫, 赵玲玲, 沙晓鹏, 郭士亮, 李文超2015光谱学与光谱分析35 2660]

    [19]

    Boudebs G, Cherukulappurath S, Guignard M, Troles J, Smektala F, Sanchez F 2004 Opt. Commun. 230 331

  • [1]

    Chin M K, Ho S T 1998 J. Lightwave Technol. 16 1433

    [2]

    Hong J X, Liu Y, Chen W 2014 J. Optoelectr. Laser 25 1668 (in Chinese)[洪建勋, 刘莹, 陈伟2014光电子激光25 1668]

    [3]

    Dong P, Shafiiha R, Liao S, Liang H, Feng N N, Feng D Z, Li G L, Zheng X Z, Krishnamoorthy A V, Khiavi M A 2010 Opt. Express 18 10941

    [4]

    Wang W, Zhang A H, Yang K, Yang L J, Feng S J, Wang Z 2013 Infrared Laser Eng. 42 2162 (in Chinese)[王巍, 张爱华, 杨铿, 杨丽君, 冯世娟, 王振2013红外与激光工程42 2162]

    [5]

    Tian H, Zhang Y D, Qi D W, Su R Z, Bai Y, Xu Q 2016 Chin. Phys. B 25 064204

    [6]

    Zhang X, Li Z Q, Tong K 2014 Acta Phys. Sin. 63 094207 (in Chinese)[张鑫, 李志全, 童凯2014物理学报63 094207]

    [7]

    Lin X S, Huang X G 2008 Opt. Lett. 33 2874

    [8]

    Liu J Q, Wang L, He M D, Huang W Q, Wang D Y, Zou B S, Wen S H 2008 Opt. Express 16 4888

    [9]

    Tao J, Huang X G, Lin X S, Zhang Q, Jin X P 2009 Opt. Express 17 13989

    [10]

    Lin X, Huang X 2009 Opt. Soc. Am. B 26 1263

    [11]

    Gong Y K, Wang L R, Hu X H, Li X H, Liu X M 2009 Opt. Express 17 13727

    [12]

    Tao J, Huang X G, Lin X S, Chen J H, Zhang Q, Jin X P 2010 Opt. Soc. Am. B 27 323

    [13]

    Vermeulen N, Sipe J E, Helt L G, Thienpont H 2012 Laser Photon. Rev. 6 793

    [14]

    Jiang X Q, Li G Y, Wei Y X, Yang J Y, Wang M H 2011 National 15th Optical Fiber Communication and the 16th Annual Meeting of Integrated Optics Xi' an June 26, 2011 p1

    [15]

    Lin Q, Zhang J D, Fauchet P M, Agrawal G P 2006 Opt. Express 14 4786

    [16]

    Jin L 2012 Ph. D. Dissertation (Zhejiang:Zhejiang University) (in Chinese)[金磊2012博士学位论文(浙江:浙江大学)]

    [17]

    Guo J P, Adato R 2008 Opt. Express 16 1232

    [18]

    Li Z Q, An D Y, Zhang X, Zhao L L, Sha X P, Guo S L, Li W C 2015 Spectrosc. Spect. Anal. 35 2660(in Chinese)[李志全, 安东阳, 张鑫, 赵玲玲, 沙晓鹏, 郭士亮, 李文超2015光谱学与光谱分析35 2660]

    [19]

    Boudebs G, Cherukulappurath S, Guignard M, Troles J, Smektala F, Sanchez F 2004 Opt. Commun. 230 331

  • [1] Ma Meng-Yu, Yu Cui, He Ze-Zhao, Guo Jian-Chao, Liu Qing-Bin, Feng Zhi-Hong. Growth and surface structrue of hydrogen terminal diamond thin films. Acta Physica Sinica, 2024, 73(8): 088101. doi: 10.7498/aps.73.20240053
    [2] Xing Yu-Fei, Ren Ze-Yang, Zhang Jin-Feng, Su Kai, Ding Sen-Chuan, He Qi, Zhang Jin-Cheng, Zhang Chun-Fu, Hao Yue. Characteristics of hydrogen terminated single crystalline diamond logic inverter. Acta Physica Sinica, 2022, 71(8): 088102. doi: 10.7498/aps.71.20211447
    [3] Wang Wu-Yue, Yu Yu, Li Yun-Fei, Wang Gong, Li Kai, Wang Zhi-Yong, Song Chang-Yu, Li Sen-Sen, Li Yu-Hai, Liu Tong-Yu, Yan Xiu-Sheng, Wang Yu-Lei, Lü Zhi-Wei. Ridge-type suspended waveguide Brillouin laser. Acta Physica Sinica, 2022, 71(2): 024203. doi: 10.7498/aps.71.20211539
    [4] Ridge Type Suspended Waveguide Brillouin Laser(Optoelectronic Technology and Application ). Acta Physica Sinica, 2021, (): . doi: 10.7498/aps.70.20211539
    [5] Wang Jing-Li, Zhang Jian-Zhe, Chen He-Ming. Design and simulation of polarization-insensitive ring resonator based on subwavelength grating and sandwiched structure. Acta Physica Sinica, 2021, 70(12): 124201. doi: 10.7498/aps.70.20201965
    [6] Chen Long, Chen Cheng-Ke, Li Xiao, Hu Xiao-Jun. Effects of oxidation on silicon vacancy photoluminescence and microstructure of separated domain formed nanodiamond films. Acta Physica Sinica, 2019, 68(16): 168101. doi: 10.7498/aps.68.20190422
    [7] Wang Jun-Zhuo, Li Shang-Sheng, Su Tai-Chao, Hu Mei-Hua, Hu Qiang, Wu Yu-Min, Wang Jian-Kang, Han Fei, Yu Kun-Peng, Gao Guang-Jin, Guo Ming-Ming, Jia Xiao-Peng, Ma Hong-An, Xiao Hong-Yu. Shape controlled growth for type Ib large diamond crystals. Acta Physica Sinica, 2018, 67(16): 168101. doi: 10.7498/aps.67.20180356
    [8] Ji Zhe, Jia Da-Gong, Zhang Hong-Xia, Zhang De-Long, Liu Tie-Gen, Zhang Yi-Mo. Study of structure parameters effect on performance of optical en/decoder based on parallel-cascaded microring resonators. Acta Physica Sinica, 2015, 64(3): 034218. doi: 10.7498/aps.64.034218
    [9] Lin Jian-Xiao, Wu Jiu-Hui, Liu Ai-Qun, Chen Zhe, Lei Hao. A nano-silicon-photonic switch driven by an optical gradient force. Acta Physica Sinica, 2015, 64(15): 154209. doi: 10.7498/aps.64.154209
    [10] Li Xin, Wang Lu-Na, Guo Shi-Liang, Li Zhi-Quan, Yang Ming. Doubled temperature measurement range for a single micro-ring sensor. Acta Physica Sinica, 2014, 63(15): 154209. doi: 10.7498/aps.63.154209
    [11] Tian He, Sun Wei-Min, Zhang Yun-Dong. Phase sensitivity of rotation sensing in coupled resonator waveguides. Acta Physica Sinica, 2013, 62(19): 194204. doi: 10.7498/aps.62.194204
    [12] Cao Tong-Tong, Zhang Li-Bin, Fei Yong-Hao, Cao Yan-Mei, Lei Xun, Chen Shao-Wu. Design of a high-speed silicon electro-optical modulator based on an add-drop micro-ring resonator. Acta Physica Sinica, 2013, 62(19): 194210. doi: 10.7498/aps.62.194210
    [13] Zhang Li-Bin, Chen Shao-Wu, Fei Yong-Hao, Cao Tong-Tong, Cao Yan-Mei, Lei Xun. Study of data format transform with optical waveguide resonators. Acta Physica Sinica, 2013, 62(19): 194201. doi: 10.7498/aps.62.194201
    [14] Zhang Fu-Li, Zhao Xiao-Peng. Tunable split ring resonator and its effect. Acta Physica Sinica, 2007, 56(8): 4661-4667. doi: 10.7498/aps.56.4661
    [15] Ouyang Xiao-Ping, Wang Lan, Fang Ru-Yu, Zhang Zhong-Bing, Wang Wei, Lü Fan-Xiu, Tang Wei-Zhong, Cheng Guang-Chao. Preparation of diamond-film based radiation detector. Acta Physica Sinica, 2006, 55(5): 2170-2174. doi: 10.7498/aps.55.2170
    [16] Liu Cun-Ye, Liu Chang. Microscopic structure studies on the diamond films fabricated by chemical vapor deposition method. Acta Physica Sinica, 2003, 52(6): 1479-1483. doi: 10.7498/aps.52.1479
    [17] KONG GHUN-YANG, WANG WAN-LU, LIAO KE-JUN, MA YONG, WANG SHU-XIA, FANG LIANG. THE MAGNETORESISTIVE EFFECT OF p-TYPE SEMICONDUCTING DIAMOND FILMS. Acta Physica Sinica, 2001, 50(8): 1616-1622. doi: 10.7498/aps.50.1616
    [18] ZHANG XIAO-PING, GAO ZHI-QIANG, SUN BI-WU, XIE KAN, LIN ZHANG-DA. A STUDY ON STRUCTURAL STABILITY OF BUFFER LAYER BETWEEN SILICON SUBSTRATE AND DIAMOND FILM. Acta Physica Sinica, 1993, 42(2): 309-313. doi: 10.7498/aps.42.309
    [19] WU JUN-RU, A. LARRAZA, I. RUDNICK. MEASUREMENTS OF NONLINEAR RESONANT CURVES OF A RECTANGULAR SURFACE WATER WAVE RESONATOR. Acta Physica Sinica, 1985, 34(6): 796-800. doi: 10.7498/aps.34.796
    [20] GAO LIAN. STRUCTURE TRANSFORMATION IN DIAMOND SYNTHESIS. Acta Physica Sinica, 1982, 31(8): 1085-1089. doi: 10.7498/aps.31.1085
Metrics
  • Abstract views:  5420
  • PDF Downloads:  284
  • Cited By: 0
Publishing process
  • Received Date:  06 May 2017
  • Accepted Date:  31 May 2017
  • Published Online:  05 October 2017

/

返回文章
返回