Ultrahigh-precision wavelength resolver based on Fano resonance
A resolver, ultra-high technology, applied in the field of wavelength resolvers, can solve the problem of limited resolution of wavelength resolvers, and achieve the effect of compact structure, stable and reliable system, and high resolution
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Embodiment 1
[0039] Such as figure 1 As shown, the principle that the present invention is based on is to use the filter curves 1 and 2 of Fano resonance to form an "X"-shaped spectrum. In this spectrum range, the wavelength physical quantity of the light to be measured is only related to the power ratio change of the two filter spectral lines. , regardless of the power of the input light. The physical quantity of the wavelength of the light to be measured can be obtained by detecting the magnitude of the optical power at the output end.
[0040] Such as figure 2 As shown, the optical signal to be measured is divided into multiple equal beams of light by the waveguide beam splitter and enters multiple Fano filter modules respectively. The output optical signal is processed by PD to obtain the physical quantity of the measured optical signal wavelength.
[0041] Such as image 3 As shown, the waveguide beam splitter is based on the principle of multimode interference, and adopts linear ...
Embodiment 2
[0047] Such as figure 1 As shown, the principle that the present invention is based on is to use the filter curves 1 and 2 of Fano resonance to form an "X"-shaped spectrum. In this spectrum range, the wavelength physical quantity of the light to be measured is only related to the power ratio change of the two filter spectral lines. , regardless of the power of the input light. The physical quantity of the wavelength of the light to be measured can be obtained by detecting the magnitude of the optical power at the output end.
[0048] Such as figure 2 As shown, the optical signal to be measured is divided into multiple equal beams of light by the waveguide beam splitter and enters multiple Fano filter modules respectively. The output optical signal is processed by PD to obtain the physical quantity of the measured optical signal wavelength.
[0049] Such as image 3 As shown, the waveguide beam splitter is based on the principle of multimode interference, and adopts linear ...
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