4.5 Article

Efficient silicon integrated four-mode edge coupler for few-mode fiber coupling

Journal

CHINESE OPTICS LETTERS
Volume 20, Issue 1, Pages -

Publisher

OSA-OPTICAL SOC
DOI: 10.3788/COL202220.011302

Keywords

multimode coupling; CMOS compatibility; silicon waveguide; few-mode fiber

Categories

Funding

  1. National Key Research and Development Program of China [2017YFA0206403]
  2. Shanghai Municipal Science and Technology Major Project [2017SHZDZX03]
  3. National Natural Science Foundation of China [61475180]
  4. Science and Technology Commission of Shanghai Municipality [16ZR1442600]
  5. Strategic Priority Research Program of Chinese Academy of Sciences [XDB24020400]
  6. Shanghai Sailing Program [18YF1428100]

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We have designed a silicon-based four-mode edge coupler that can efficiently couple multimode silicon waveguides and few-mode fibers through mode conversion and power splitting. This structure is compact, low loss, and fabrication-tolerant.
Here, we designed a broadband, low loss, compact, and fabrication-tolerant silicon-based four-mode edge coupler, composed of a 1 x 3 adiabatic mode-evolution counter-taper splitter and a triple-tip inverse taper. Based on mode conversion and power splitting, the proposed structure can simultaneously realize efficient mode coupling from TE0, TM0, TE1, and TM1 modes of multimode silicon waveguides to linearly polarized (LP), LP01,x, LP01,y, LP11a,x, and LP11a,y, modes in the few-mode fiber. To the best of our knowledge, we proposed the first scheme of four LP modes coupling, which is fully compatible with standard fabrication process. The 3D finite-difference time-domain simulation results show that the on-chip conversion losses of the four modes remain lower than 0.62 dB over the 200 nm wavelength range, and total coupling losses are 4.1 dB, 5.1 dB, 2.1 dB, and 2.9 dB for TE0-to-LP01,x, TM0-to-LP01,y, TE1 -to-LP11a,x, and TM1-to-LP11a,y, respectively. Good fabrication tolerance and relaxed critical dimensions make the four-mode edge coupler compatible with standard fabrication process of commercial silicon photonic foundries.

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