• Photonics Research
  • Vol. 12, Issue 3, 499 (2024)
Wenkai Zhang1, Bo Wu1, Wentao Gu1, Junwei Cheng1, Hailong Zhou1、2, Liao Chen1, Wenchan Dong1, Jianji Dong1、*, and Xinliang Zhang1
Author Affiliations
  • 1Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan 430074, China
  • 2e-mail: hailongzhou@hust.edu.cn
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    DOI: 10.1364/PRJ.511389 Cite this Article Set citation alerts
    Wenkai Zhang, Bo Wu, Wentao Gu, Junwei Cheng, Hailong Zhou, Liao Chen, Wenchan Dong, Jianji Dong, Xinliang Zhang. Time-space multiplexed photonic-electronic digital multiplier[J]. Photonics Research, 2024, 12(3): 499 Copy Citation Text show less
    References

    [1] H. Zhou, J. Dong, J. Cheng. Photonic matrix multiplication lights up photonic accelerator and beyond. Light Sci. Appl., 11, 30(2022).

    [2] C. Li, X. Zhang, J. Li. The challenges of modern computing and new opportunities for optics. PhotoniX, 2, 20(2021).

    [3] K.-I. Kitayama, M. Notomi, M. Naruse. Novel frontier of photonics for data processing—photonic accelerator. APL Photon., 4, 090901(2019).

    [4] D. A. Miller. Attojoule optoelectronics for low-energy information processing and communications. J. Lightwave Technol., 35, 346-396(2017).

    [5] K. Vandoorne, P. Mechet, T. Van Vaerenbergh. Experimental demonstration of reservoir computing on a silicon photonics chip. Nat. Commun., 5, 3541(2014).

    [6] D. Pierangeli, G. Marcucci, C. Conti. Large-scale photonic Ising machine by spatial light modulation. Phys. Rev. Lett., 122, 213902(2019).

    [7] X. Xu, M. Tan, B. Corcoran. 11 TOPS photonic convolutional accelerator for optical neural networks. Nature, 589, 44-51(2021).

    [8] J. Hardy, J. Shamir. Optics inspired logic architecture. Opt. Express, 15, 150-165(2007).

    [9] R. A. Athale, S. H. Lee. Development of an optical parallel logic device and a half-adder circuit for digital optical processing. Opt. Eng., 18, 513-517(1979).

    [10] Y. Wang, X. Zhang, J. Dong. Simultaneous demonstration on all-optical digital encoder and comparator at 40  Gb/s with semiconductor optical amplifiers. Opt. Express, 15, 15080-15085(2007).

    [11] C. Wu, X. Yang, H. Yu. Harnessing optoelectronic noises in a photonic generative network. Sci. Adv., 8, eabm2956(2022).

    [12] H. Qi, Z. Du, X. Hu. High performance integrated photonic circuit based on inverse design method. Opto-Electron. Adv., 5, 210061(2022).

    [13] K. Li, H.-F. Ting, M. A. Foster. High-speed all-optical NAND/AND logic gates using four-wave mixing Bragg scattering. Opt. Lett., 41, 3320-3323(2016).

    [14] H. Mondal, K. Goswami, M. Sen. Design and analysis of all-optical logic NOR gate based on linear optics. Opt. Quantum Electron., 54, 272(2022).

    [15] K. Goswami, H. Mondal, P. Das. Realization of ultra-compact all-optical logic AND Gate based on photonic crystal waveguide. Advances in Communication, Devices and Networking: Proceedings of ICCDN, 61-68(2022).

    [16] Z. Ying, Z. Wang, Z. Zhao. Silicon microdisk-based full adders for optical computing. Opt. Lett., 43, 983-986(2018).

    [17] J. Dong, S. Fu, X. Zhang. Single SOA based all-optical adder assisted by optical bandpass filter: theoretical analysis and performance optimization. Opt. Commun., 270, 238-246(2007).

    [18] Y. Tian, H. Xiao, X. Wu. Experimental realization of an optical digital comparator using silicon microring resonators. Nanophotonics, 7, 669-675(2018).

    [19] K. Komatsu, G. Hosoya, H. Yashima. Ultrafast all-optical digital comparator using quantum-dot semiconductor optical amplifiers. Opt. Quantum Electron., 51, 39(2019).

    [20] C. Feng, Z. Ying, Z. Zhao. Toward high-speed and energy-efficient computing: a WDM-based scalable on-chip silicon integrated optical comparator. Laser Photon. Rev., 15, 2000275(2021).

    [21] W. Dong, L. Lei, L. Chen. All-optical 2×2-bit multiplier at 40  Gb/s based on canonical logic units-based programmable logic array (CLUs-PLA). J. Lightwave Technol., 38, 5586-5594(2020).

    [22] M. Liaghati-Rad, M. Soroosh, A. Kosarian. High-speed all-optical 2-bit multiplier based on photonic crystal structure. Photon. Netw. Commun., 43, 193-203(2022).

    [23] S. Kumar, A. Bisht, G. Singh. Implementation of 2-bit multiplier based on electro-optic effect in Mach–Zehnder interferometers. Opt. Quantum Electron., 47, 3667-3688(2015).

    [24] Z. Ying, C. Feng, Z. Zhao. Electronic-photonic arithmetic logic unit for high-speed computing. Nat. Commun., 11, 2154(2020).

    [25] M. Mohammadi, F. Habibi, M. Seifouri. Recent advances on all-optical photonic crystal analog-to-digital converter (ADC). Opt. Quantum Electron., 54, 192(2022).

    [26] S. Ramtin Fard, M. R. Salehi, E. Abiri. Ultra-fast all-optical ADC using nonlinear ring resonators in photonic crystal microstructure. Opt. Quantum Electron., 53, 120(2021).

    [27] F. Mehdizadeh, M. Soroosh, H. Alipour-Banaei. All optical 2-bit analog to digital converter using photonic crystal based cavities. Opt. Quantum Electron., 49, 38(2017).

    [28] H. Shu, L. Chang, Y. Tao. Microcomb-driven silicon photonic systems. Nature, 605, 457-463(2022).

    [29] L. Chang, S. Liu, J. E. Bowers. Integrated optical frequency comb technologies. Nat. Photonics, 16, 95-108(2022).

    [30] J. Cheng, Y. Xie, Y. Liu. Human emotion recognition with a microcomb-enabled integrated optical neural network. Nanophotonics, 12, 3883-3894(2023).

    [31] C. Huang, S. Fujisawa, T. F. de Lima. A silicon photonic–electronic neural network for fibre nonlinearity compensation. Nat. Electron., 4, 837-844(2021).

    [32] F. Ashtiani, A. J. Geers, F. Aflatouni. An on-chip photonic deep neural network for image classification. Nature, 606, 501-506(2022).

    [33] A. N. Tait, T. F. De Lima, M. A. Nahmias. Silicon photonic modulator neuron. Phys. Rev. Appl., 11, 064043(2019).

    [34] R. Soref, F. De Leonardis, Z. Ying. Silicon-based group-IV OEO devices for gain, logic, and wavelength conversion. ACS Photon., 7, 800-811(2020).

    [35] P. Dong, L. Chen, Y.-K. Chen. High-speed low-voltage single-drive push-pull silicon Mach-Zehnder modulators. Opt. Express, 20, 6163-6169(2012).

    [36] M. Li, L. Wang, X. Li. Silicon intensity Mach–Zehnder modulator for single lane 100  Gb/s applications. Photon. Res., 6, 109-116(2018).

    [37] J. S. RG. High modulation efficient silicon MZM with core-based split PN junction phase shifter. Silicon, 14, 7033-7041(2022).

    [38] Q. Xu, B. Schmidt, S. Pradhan. Micrometre-scale silicon electro-optic modulator. Nature, 435, 325-327(2005).

    [39] X. Xiao, H. Xu, X. Li. 25  Gbit/s silicon microring modulator based on misalignment-tolerant interleaved PN junctions. Opt. Express, 20, 2507-2515(2012).

    [40] Q. Xu, S. Manipatruni, B. Schmidt. 12.5  Gbit/s carrier-injection-based silicon micro-ring silicon modulators. Opt. Express, 15, 430-436(2007).

    [41] P. Cheben, J. Schmid, A. Delâge. A high-resolution silicon-on-insulator arrayed waveguide grating microspectrometer with sub-micrometer aperture waveguides. Opt. Express, 15, 2299-2306(2007).

    [42] T. Ye, Y. Fu, L. Qiao. Low-crosstalk Si arrayed waveguide grating with parabolic tapers. Opt. Express, 22, 31899-31906(2014).

    [43] T. Fukazawa, F. Ohno, T. Baba. Very compact arrayed-waveguide-grating demultiplexer using Si photonic wire waveguides. Jpn. J. Appl. Phys., 43, L673-L677(2004).

    [44] H. Lee, T. Chen, J. Li. Ultra-low-loss optical delay line on a silicon chip. Nat. Commun., 3, 867(2012).

    [45] Y. Xie, S. Hong, H. Yan. Low-loss chip-scale programmable silicon photonic processor. Opto-Electron. Adv., 6, 220030(2023).

    Wenkai Zhang, Bo Wu, Wentao Gu, Junwei Cheng, Hailong Zhou, Liao Chen, Wenchan Dong, Jianji Dong, Xinliang Zhang. Time-space multiplexed photonic-electronic digital multiplier[J]. Photonics Research, 2024, 12(3): 499
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