• Acta Optica Sinica
  • Vol. 42, Issue 2, 0206001 (2022)
Xiaobo Li1, Hailong Wang1、*, Linan Ma1, and Qian Gong2
Author Affiliations
  • 1Shandong Provincial Key Laboratory of Laser Polarization and Information Technology, School of Physics and Engineering, Qufu Normal University, Qufu, Shandong 273165, China
  • 2Key Laboratory of Terahertz Solid-State Technology, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai 200050, China
  • show less
    DOI: 10.3788/AOS202242.0206001 Cite this Article Set citation alerts
    Xiaobo Li, Hailong Wang, Linan Ma, Qian Gong. Wavelength Conversion Characteristics of Quantum-Dot Semiconductor Optical Amplifier Based on Photonic Crystal[J]. Acta Optica Sinica, 2022, 42(2): 0206001 Copy Citation Text show less
    References

    [1] Contestabile G, Maruta A, Sekiguchi S et al. All-optical wavelength multicasting in a QD-SOA[J]. IEEE Journal of Quantum Electronics, 47, 541-547(2011).

    [2] Zhao X F, Pan S L, Yang Y F et al. All-optical wavelength conversion based on semiconductor optical amplifier and delay interferometer[J]. Acta Optica Sinica, 29, 892-896(2009).

    [3] Contestabile G. Ultra-broadband, highly efficient coherent wavelength conversion in quantum dot SOA[C]∥2013 IEEE Photonics Conference, September 8-12, 2013, Bellevue, WA, USA., 525-526(2013).

    [4] Liu Y, He J, Guo M J et al. An overview of big data industry in China[J]. China Communications, 11, 1-10(2014).

    [5] Kotb A, Zoiros K E, Guo C L. 160 Gb/s photonic crystal semiconductor optical amplifier-based all-optical logic NAND gate[J]. Photonic Network Communications, 36, 246-255(2018).

    [6] Kotb A, Zoiros K E, Guo C L. Ultrafast performance of all-optical AND and OR logic operations at 160 Gb/s using photonic crystal semiconductor optical amplifier[J]. Optics & Laser Technology, 119, 105611(2019).

    [7] Lee H J, Sohn M, Kim K et al. Wavelength dependent performance of a wavelength converter based on cross-gain modulation and birefringence of a semiconductor optical amplifier[J]. IEEE Photonics Technology Letters, 11, 185-187(1999).

    [8] Danielsen S L, Hansen P B, Stubkjaer K E et al. All optical wavelength conversion schemes for increased input power dynamic range[J]. IEEE Photonics Technology Letters, 10, 60-62(1998).

    [9] Shi S S, Wang H L, Gong Q et al. Refined sectionalized method of QD-SOA[J]. Optik, 125, 504-507(2014).

    [10] Yang W H, Wang H L, Wang Z X et al. Wavelength conversion efficiency of quantum dot semiconductor optical amplifier[J]. Acta Optica Sinica, 37, 0406005(2017).

    [11] Mi S C, Wang H L, Zhang S Y et al. Research of all-optical NAND gates based on quantum dot semiconductor optical amplifiers cascaded connection XGM and XPM[J]. Optik, 202, 163551(2020).

    [12] Huang D X, Zhang X L, Huang L R[M]. Semiconductor optical amplifiers and its applications, 114-115(2012).

    [13] Hamie A, Sharaiha A, Guegan M et al. All-optical logic NOR gate using two-cascaded semiconductor optical amplifiers[J]. IEEE Photonics Technology Letters, 14, 1439-1441(2002).

    [14] Chen D L, Wang R, Pu T et al. A novel thresholder based on XGM effect in a DFB laser combined with external optical filtering[J]. IEEE Photonics Journal, 8, 7801307(2016).

    [15] Taleb H, Abedi K. Modeling and design of photonic crystal quantum-dot semiconductor optical amplifiers[J]. IEEE Transactions on Electron Devices, 61, 2419-2426(2014).

    [16] Dutta N K, Wang Q. Semiconductor optical amplifiers[M]. 2nd ed. Singapore: World Scientific(2013).

    [17] Kincaid D, David Kincaid, Ward Cheney, Cheney W[M]. 数值分析, 46-52(2005).

         [M]. Numerical analysis, 46-52(2005).

    [18] Nielsen M L, Mørk J, Suzuki R et al. Experimental and theoretical investigation of the impact of ultra-fast carrier dynamics on high-speed SOA-based all-optical switches[J]. Optics Express, 14, 331-347(2006).

    [19] Xie T Y, Wang J, Ma C et al. Research on phase noise suppression of optoelectronic oscillator using semiconductor optical amplifier[J]. Acta Optica Sinica, 39, 1223007(2019).

    [20] Cleary C S, Power M J, Schneider S et al. Fast gain recovery rates with strong wavelength dependence in a non-linear SOA[J]. Optics Express, 18, 25726-25737(2010).

    [21] Ben-Ezra Y, Haridim M, Lembrikov B I. Theoretical analysis of gain-recovery time and chirp in QD-SOA[J]. IEEE Photonics Technology Letters, 17, 1803-1805(2005).

    [22] Kotb A, Zoiros K E. Performance analysis of all-optical XOR gate with photonic crystal semiconductor optical amplifier-assisted Mach-Zehnder interferometer at 160 Gb/s[J]. Optics Communications, 402, 511-517(2017).

    [23] Contestabile G, Maruta A, Sekiguchi S et al. Cross-gain modulation in quantum-dot SOA at 1550 nm[J]. IEEE Journal of Quantum Electronics, 46, 1696-1703(2010).

    [24] Yang W, Zhang M, Ye P D. Analysis of 160 Gb/s all-optical NRZ-to-RZ data format conversion using quantum-dot semiconductor optical amplifiers assisted Mach-Zehnder interferometer[J]. Optics Communications, 282, 1744-1750(2009).

    [25] Contestabile G, Presi M, Ciaramella E. Multiple wavelength conversion for WDM multicasting by FWM in an SOA[J]. IEEE Photonics Technology Letters, 16, 1775-1777(2004).

    Xiaobo Li, Hailong Wang, Linan Ma, Qian Gong. Wavelength Conversion Characteristics of Quantum-Dot Semiconductor Optical Amplifier Based on Photonic Crystal[J]. Acta Optica Sinica, 2022, 42(2): 0206001
    Download Citation