Optical modulator based on SiC structure using VO2 phase change material at 2.1 μm wavelength

This work proposes and investigates a PCM based optical modulator tailored for 2.1 μm wavelength operation, which finds diverse potential applications in medicine, wind speed sensing, water vapor detection, and carbon dioxide monitoring. We propose and simulate a SiC-core waveguide on SiO 2 substrat...

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Veröffentlicht in:Journal of materials science. Materials in electronics 2024, Vol.35 (2), p.124, Article 124
Hauptverfasser: Abbaspour, M., Nikoufard, M., Mahdian, M. A.
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Sprache:eng
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Zusammenfassung:This work proposes and investigates a PCM based optical modulator tailored for 2.1 μm wavelength operation, which finds diverse potential applications in medicine, wind speed sensing, water vapor detection, and carbon dioxide monitoring. We propose and simulate a SiC-core waveguide on SiO 2 substrate employing VO 2 as an integrated phase change cladding layer to achieve optical modulation. The optimized SiC core thickness is 400 nm based on modeling the SiO 2 /SiC/SiO 2 waveguide structure. The waveguide structure can achieve optical switching by transitioning the phase of VO 2 cladding between its metallic and insulating phases. Key optical parameters including the complex effective index, confinement factor, and normalized effective index are calculated as a function of VO 2 thickness, ridge width, and wavelength for both TE and TM polarizations. The results indicate that for TM-polarized light, modulation of the optical signal can be achieved by electrically tuning the VO 2 phase, yielding electro-absorption modulation over a 1 μm device length. Simulations demonstrate a propagation length of 2.1539 μm in the transparent insulating phase of VO2 and 0.1552 μm when transitioned to its opaque metallic phase, indicating strong optical absorption modulation suited for various applications. With customized engineering at a novel wavelength, this pioneering SiC-VO 2 device holds great promise to further progress optical modulation capabilities for an array of applications across science and industry.
ISSN:0957-4522
1573-482X
DOI:10.1007/s10854-024-11925-w