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Photonic integrated circuit components based on amorphous silicon-on-insulator technology

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摘要 We present integrated-optic building blocks and functional photonic devices based on amorphous siliconon-insulator technology. Efficient deep-etched fiber-to-chip grating couplers, low-loss single-mode photonic wire waveguides, and compact power splitters are presented. Based on the sub-μm photonic wires, 2 × 2 Mach–Zehnder interferometers and add/drop microring resonators(MRRs) with low device footprints and high finesse up to 200 were realized and studied. Compact polarization rotators and splitters with ≥10 d B polarization extinction ratio were fabricated for the polarization management on-chip. The tuning and trimming capabilities of the material platform are demonstrated with efficient microheaters and a permanent device trimming method, which enabled the realization of energy-efficient photonic circuits. Wavelength multiplexers in the form of cascaded filter banks and 4 × 4 routers based on MRR switches are presented. Fabrication imperfections were analyzed and permanently corrected by an accurate laser-trimming method, thus enabling eight-channel multiplexers with record low metrics of sub-m W static power consumption and ≤1°C temperature overhead. The high quality of the functional devices, the high tuning efficiency, and the excellent trimming capabilities demonstrate the potential to realize low-cost, densely integrated, and ultralow-power 3D-stacked photonic circuits on top of CMOS microelectronics. We present integrated-optic building blocks and functional photonic devices based on amorphous siliconon-insulator technology. Efficient deep-etched fiber-to-chip grating couplers, low-loss single-mode photonic wire waveguides, and compact power splitters are presented. Based on the sub-μm photonic wires, 2 × 2 Mach–Zehnder interferometers and add/drop microring resonators(MRRs) with low device footprints and high finesse up to 200 were realized and studied. Compact polarization rotators and splitters with ≥10 d B polarization extinction ratio were fabricated for the polarization management on-chip. The tuning and trimming capabilities of the material platform are demonstrated with efficient microheaters and a permanent device trimming method, which enabled the realization of energy-efficient photonic circuits. Wavelength multiplexers in the form of cascaded filter banks and 4 × 4 routers based on MRR switches are presented. Fabrication imperfections were analyzed and permanently corrected by an accurate laser-trimming method, thus enabling eight-channel multiplexers with record low metrics of sub-m W static power consumption and ≤1°C temperature overhead. The high quality of the functional devices, the high tuning efficiency, and the excellent trimming capabilities demonstrate the potential to realize low-cost, densely integrated, and ultralow-power 3D-stacked photonic circuits on top of CMOS microelectronics.
出处 《Photonics Research》 SCIE EI 2016年第3期126-134,共9页 光子学研究(英文版)
基金 supported by DFG and TUHH in the funding programme Open Access Publishing
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  • 1B. Radjenovid and M. Radmilovid-Radjenovid, Int. J. Numer Model. 27, 259 (2014).
  • 2B. E. Little, S. T. Chu, W. Pan, D. Ripin, T. Kaneko, Y. Kokubun, and E. P. Ippen, IEEE Photon. Technol. Lett. 11, 215 (1999).
  • 3J. Guo, M. J. Shaw, G. A. Vawter, P. Esherick, G. R. Hadley, and C. T. Sullivan, in Proceedings of 17th Annual Meeting IEEE/ LEOS.2 745 (2004).
  • 4L. Yang, W. Pan, L. Yan, B. Luo, P. Mu, and N. Li, Chin. Opt. Lett. 13, 414o3 (2014).
  • 5J. Heebner, R. Grovel and T. A. Ibrahim, Optical Microresonators Theory, Applications and Fabrication (Springer, 2008), p. 35.
  • 6P. Dumon, G. Priem, L. R. Nunes, W. Bogaerts, D. Van Thourhout, P. Bienstman, T. K. Liang, M. Tsuchiya, P. Jaenen, S. Beckx, J. Wouters, and R. Baets, Jpn. J. Appl. Phys. 145, 6589 (2006).
  • 7B. Schmidt, Q. F. Xu, J. Shakya, S. Manipatruni, and M. Lipson, Opt. Express 15, 3140 (2007).
  • 8Z. Sheng, D. X. Dai, and S. L. He, J. Lightwave Technol. 25, 3001 (2007).
  • 9F. N. Xia, L. Sekaric, and Y. Vlasov, Nat. Photon. 1, 65 (2007).
  • 10L. Liao, D. R. Lim, A. M. Agarwal, X. M. Duan, K. K. Lee, and L. C. Kimerling, J. Electron. Mater. 29, 1380 (2000).

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