• Photonics Research
  • Vol. 12, Issue 7, 1556 (2024)
Shibo Xu1, Jiahui Zhang1, Junwei Cheng1, and Jianji Dong1,2,*
Author Affiliations
  • 1Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan 430074, China
  • 2Optics Valley Laboratory, Wuhan 430074, China
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    DOI: 10.1364/PRJ.522058 Cite this Article Set citation alerts
    Shibo Xu, Jiahui Zhang, Junwei Cheng, Jianji Dong, "Integrated spatial-temporal random speckle spectrometer with high resolution in the C-band," Photonics Res. 12, 1556 (2024) Copy Citation Text show less
    References

    [1] N. Savage. Spectrometers. Nat. Photonics, 3, 601-602(2009).

    [2] C. P. Bacon, Y. Mattley, R. DeFrece. Miniature spectroscopic instrumentation: applications to biology and chemistry. Rev. Sci. Instrum., 75, 1-16(2004).

    [3] J. Malinen, A. Rissanen, H. Saari. Advances in miniature spectrometer and sensor development. Proc. SPIE, 9101, 91010C(2014).

    [4] K. B. Beć, J. Grabska, C. W. Huck. Biomolecular and bioanalytical applications of infrared spectroscopy–a review. Anal. Chim. Acta, 1133, 150-177(2020).

    [5] A. W. Chow. Lab-on-a-chip: opportunities for chemical engineering. AIChE J., 48, 1590-1595(2002).

    [6] R. A. Crocombe. Portable spectroscopy. Appl. Spectrosc., 72, 1701-1751(2018).

    [7] J. Kulakowski, B. d’Humières. Chip-size spectrometers drive spectroscopy towards consumer and medical applications. Proc. SPIE, 11693, 116931A(2021).

    [8] J. Jia, Y. Wang, J. Chen. Status and application of advanced airborne hyperspectral imaging technology: a review. Infrared Phys. Technol., 104, 103115(2020).

    [9] R. F. Wolffenbuttel. State-of-the-art in integrated optical microspectrometers. IEEE Trans. Instrum. Meas., 53, 197-202(2004).

    [10] R. Cheng, C.-L. Zou, X. Guo. Broadband on-chip single-photon spectrometer. Nat. Commun., 10, 4104(2019).

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

    [12] J.-J. He, B. Lamontagne, A. Delage. Monolithic integrated wavelength demultiplexer based on a waveguide Rowland circle grating in InGaAsP/lnP. J. Lightwave Technol., 16, 631-638(1998).

    [13] G. Calafiore, A. Koshelev, S. Dhuey. Holographic planar lightwave circuit for on-chip spectroscopy. Light Sci. Appl., 3, e203(2014).

    [14] X. Ma, M. Li, J.-J. He. CMOS-compatible integrated spectrometer based on echelle diffraction grating and MSM photodetector array. IEEE Photonics J., 5, 6600807(2013).

    [15] A. Nitkowski, L. Chen, M. Lipson. Cavity-enhanced on-chip absorption spectroscopy using microring resonators. Opt. Express, 16, 11930-11936(2008).

    [16] S. Zheng, H. Cai, J. Song. A single-chip integrated spectrometer via tunable microring resonator array. IEEE Photonics J., 11, 6602809(2019).

    [17] A. V. Velasco, P. Cheben, P. J. Bock. High-resolution Fourier-transform spectrometer chip with microphotonic silicon spiral waveguides. Opt. Lett., 38, 706-708(2013).

    [18] S. N. Zheng, J. Zou, H. Cai. Microring resonator-assisted Fourier transform spectrometer with enhanced resolution and large bandwidth in single chip solution. Nat. Commun., 10, 2349(2019).

    [19] Q. Qiao, X. Liu, Z. Ren. MEMS-enabled on-chip computational mid-infrared spectrometer using silicon photonics. ACS Photonics, 9, 2367-2377(2022).

    [0] Z. Yang, T. Albrow-Owen, W. Cai. Miniaturization of optical spectrometers. Science, 371, eabe07(01).

    [21] S. Yuan, D. Naveh, K. Watanabe. A wavelength-scale black phosphorus spectrometer. Nat. Photonics, 15, 601-607(2021).

    [22] J. Bao, M. G. Bawendi. A colloidal quantum dot spectrometer. Nature, 523, 67-70(2015).

    [23] B. Redding, S. F. Liew, R. Sarma. Compact spectrometer based on a disordered photonic chip. Nat. Photonics, 7, 746-751(2013).

    [24] C. Yao, K. Xu, W. Zhang. Integrated reconstructive spectrometer with programmable photonic circuits. Nat. Commun., 14, 6376(2023).

    [25] C. Yao, M. Chen, T. Yan. Broadband picometer-scale resolution on-chip spectrometer with reconfigurable photonics. Light Sci. Appl., 12, 156(2023).

    [26] H. Xu, Y. Qin, G. Hu. Cavity-enhanced scalable integrated temporal random-speckle spectrometry. Optica, 10, 1177-1188(2023).

    [27] D. Yi, H. K. Tsang. High-resolution and broadband two-stage speckle spectrometer. J. Lightwave Technol., 40, 7969-7976(2022).

    [28] B. Redding, M. Alam, M. Seifert. High-resolution and broadband all-fiber spectrometers. Optica, 1, 175-180(2014).

    [29] B. Redding, S. M. Popoff, H. Cao. All-fiber spectrometer based on speckle pattern reconstruction. Opt. Express, 21, 6584-6600(2013).

    [30] M. Piels, D. Zibar. Compact silicon multimode waveguide spectrometer with enhanced bandwidth. Sci. Rep., 7, 43454(2017).

    [31] D. Yi, Y. Zhang, X. Wu. Integrated multimode waveguide with photonic lantern for speckle spectroscopy. IEEE J. Quantum Electron., 57, 0600108(2021).

    [32] S. S. Chen, D. L. Donoho, M. A. Saunders. Atomic decomposition by basis pursuit. SIAM Rev., 43, 129-159(2001).

    [33] E. J. Candes, M. B. Wakin. An introduction to compressive sampling. IEEE Signal Process Mag., 25, 21-30(2008).

    [34] H. Xu, Y. Qin, G. Hu. Integrated single-resonator spectrometer beyond the free-spectral-range limit. ACS Photonics, 10, 654-666(2023).

    [35] H. Xu, Y. Qin, G. Hu. Breaking the resolution-bandwidth limit of chip-scale spectrometry by harnessing a dispersion-engineered photonic molecule. Light Sci. Appl., 12, 64(2023).

    [36] Z. Lin, S. Yu, Y. Chen. High-performance, intelligent, on-chip speckle spectrometer using 2D silicon photonic disordered microring lattice. Optica, 10, 497-504(2023).

    [37] Y. Li, Z. Zhang, Y. Wang. Inverse-designed linear coherent photonic networks for high-resolution spectral reconstruction. ACS Photonics, 10, 1012-1018(2023).

    [38] Y. Wan, X. Fan, Z. He. Review on speckle-based spectrum analyzer. Photonic Sens., 11, 187-202(2021).

    [39] Q. Guan, Z. H. Lim, H. Sun. Review of miniaturized computational spectrometers. Sensors, 23, 8768(2023).

    [40] L. Eldén. A weighted pseudoinverse, generalized singular values, and constrained least squares problems. BIT Numer. Math., 22, 487-502(1982).

    [41] E. J. Candes, J. Romberg, T. Tao. Robust uncertainty principles: exact signal reconstruction from highly incomplete frequency information. IEEE Trans. Inf. Theory, 52, 489-509(2006).

    [42] Y. Ye, J. Zhang, D. Liu. Research on a spectral reconstruction method with noise tolerance. Curr. Opt. Photonics, 5, 562-575(2021).

    [43] Z. Wang, Z. Yu. Spectral analysis based on compressive sensing in nanophotonic structures. Opt. Express, 22, 25608-25614(2014).

    [44] Z. Yang, T. Albrow-Owen, H. Cui. Single-nanowire spectrometers. Science, 365, 1017-1020(2019).

    [45] G. H. Golub, P. C. Hansen, D. P. O’Leary. Tikhonov regularization and total least squares. SIAM J. Matrix Anal. Appl., 21, 185-194(1999).

    [46] S. F. Liew, B. Redding, M. A. Choma. Broadband multimode fiber spectrometer. Opt. Lett., 41, 2029-2032(2016).

    [47] F. Pedregosa, G. Varoquaux, A. Gramfort. Scikit-learn: machine learning in Python. J. Mach. Learn. Res., 12, 2825-2830(2018).

    [48] M. Grant, S. Boyd. CVX: MATLAB software for disciplined convex programming, version 2.1(2014).

    [49] L. Guo, H. Sun, M. Wang. A single-dot perovskite spectrometer. Adv. Mater., 34, 2200221(2022).

    [50] C. Sun, Z. Chen, Y. Ye. Scalable on‐chip microdisk resonator spectrometer. Laser Photonics Rev., 17, 2200792(2023).

    [51] J. Zhang, Z. Cheng, J. Dong. Cascaded nanobeam spectrometer with high resolution and scalability. Optica, 9, 517-521(2022).

    [52] L. Lu, H. Zhang, X. Li. Low temperature sensitivity on-chip Fourier-transform spectrometer based on dual-layer Si3N4 spiral waveguides. Photonics Res., 11, 591-599(2023).

    Shibo Xu, Jiahui Zhang, Junwei Cheng, Jianji Dong, "Integrated spatial-temporal random speckle spectrometer with high resolution in the C-band," Photonics Res. 12, 1556 (2024)
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