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Oscillation dependence of two-wave mixing gain for unidirectional ring resonator in photorefractive materials

机译:光折变材料中单向环形谐振器的两波混合增益的振荡相关性

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Dependence of the coupling strength of two-wave mixing gain in photorefractive materials for the single unidirectional ring resonator on oscillation conditions has been analyzed in the strong nonlinear regime. In this regime, difference between the frequency of the pump beam and oscillating beam is proportional to the cavity-length detuning, which can be explained in terms of the photorefractive phase-shift. This phase-shift results due to slightly non-degenerate two-wave mixing that compensates for cavity detuning and satisfies the round-trip phase condition for the steady-state oscillation. The presence of such a phase-shift allows the possibility of the nonreciprocal steady-state energy transfer between the pump and oscillating beams. If the gain due to the beam coupling is large enough to overcome the cavity losses then the signal beam is amplified in the presence of material absorption. Such amplification is responsible for the oscillations. For the single unidirectional ring resonator, the effects of cavity-length detuning, energy coupling coefficient, crystal thickness of the material, reflectivity of the cavity mirrors and material’s absorption coefficient on the frequency and intensity of oscillations have also been studied in detail. It has been found that for the smaller value of absorption coefficient (a) of the photorefractive crystal, the unidirectional ring resonator can oscillate at almost any cavity-length detuning (DG) whereas for the larger value of a oscillation occurs only when the cavitylength detuning is limited to small region (around DG=0). But reverse of the case is found for energy coupling coefficient (g0).
机译:在强非线性条件下,分析了单向环形谐振器的光折变材料中两波混合增益的耦合强度与振荡条件的关系。在这种情况下,泵浦光束和振荡光束之间的频率差与腔长失谐成正比,这可以用光折射相移来解释。这种相移的产生是由于略微退化的两波混合,补偿了腔失谐,并满足了稳态振荡的往返相位条件。这种相移的存在允许在泵浦光束和振荡梁之间进行不可逆的稳态能量转移。如果由于光束耦合产生的增益足够大,可以克服空腔损耗,那么在存在材料吸收的情况下,信号光束会被放大。这种放大是造成振荡的原因。对于单个单向环形谐振器,还详细研究了腔长失谐,能量耦合系数,材料的晶体厚度,腔镜的反射率以及材料的吸收系数对振荡频率和强度的影响。已经发现,对于光折射晶体的吸收系数(a)较小的值,单向环形谐振器几乎可以在任何腔长失谐(DG)处振荡,而对于较大的振荡值,仅在腔长失谐时才发生。仅限于小区域(DG = 0附近)。但是发现能量耦合系数(g0)情况相反。

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