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Design on compatible stealth photonic crystal of near/middle infrared and 1.06 μm laser

机译:近/中红外线兼容隐形光子晶体的设计和1.06μm激光器

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In the near and middle infrared atmospheric window, infrared stealth material require a low absorptivity (which means a low emissivity according to Kirchhoff's law of black body), at the same time, it also requires high absorptivity so as to decrease the reflectance at military laser wavelength of 1.06μm. Under this circumstances, compatible stealth of infrared and laser is an urgent demand, but the demand is ambivalent for conventional materials. Photonic crystal (PC), as a new type of artificial periodic structure function material, can realize broadband thermal infrared stealth based on its high-reflection photon forbidden band (also called photonic band gap). The high-reflection photon forbidden band of PC can be adjusted to near and middle infrared wave band through some rational methods. When a defect was added into the periodic structure of PC, a "hole-digging" reflection spectrum, which is high absorption at military laser wavelength of 1.06μm, can be achieved, so compatible stealth of near and middle infrared and military laser wavelength of 1.06μm can be achieved too. In this paper, we selected near and middle infrared-transparent materials, Te and MgF_2, as high refractive index and low refractive index material respectively, and designed a one-dimensional one-defect-mode PC whose photon forbidden band was broadened to 1-5μm by constructing two photonic crystals into one. The optical property of the PC was calculated by Transfer matrix method (TMM) of thin-film optical theory, and the results shows that the as-designed PC has a high spectral reflectance in the near and middle infrared band, among which the reflectivity in 1.68μm~5.26μm band reached more than 90%, and the 2.48~5.07μm band even reached 99.99%. The result also shows that between the band gap of 1-5μm, there are one defect mode locating in the wavelength of 1.06μm, whose reflectance is below 0.70%, which means its spectral absorptivity is greater than 99.30%. All the above we have discussed proved that this "hole-digging spectrum" PC can realize the compatible stealth of near and middle infrared and 1.06μm military laser.
机译:在近乎和中红外大气窗口中,红外隐形材料需要低吸收率(这意味着根据黑体的Kirchhoff的律法的低发射率),同时,它还需要高吸收率,以降低军用激光的反射率波长为1.06μm。在这种情况下,兼容红外和激光的隐身是一种紧迫的需求,但需求对于常规材料而言是矛盾的。光子晶体(PC)作为一种新型的人造周期性结构功能材料,可以基于其高反射光子禁区(也称为光子带隙)来实现宽带热红外隐形。通过一些合理的方法可以将PC的高反射光子禁区通过一些合理的方法进行调整到近的和中红外波带。当将缺陷添加到PC的周期性结构中时,可以实现“挖掘”反射谱,这是在军事激光波长为1.06μm的高吸收的反射谱,可以如此兼容近乎红外线和军用激光波长的兼容隐藏1.06μm也可以实现。在本文中,我们分别选择了附近的红外透明材料,TE和MGF_2,分别为高折射率和低折射率材料,并设计了一维一缺陷模式PC,其光子禁止带宽为1-通过将两个光子晶体构建成一个。通过薄膜光学理论的传递矩阵法(TMM)计算PC的光学性质,结果表明,设计的PC在近乎和中红外带中具有高光谱反射,其中反射率1.68μm〜5.26μm频段达到90%以上,2.48〜5.07μm频段甚至达到99.99%。结果还表明,在1-5μm的带隙之间,存在一个缺陷模式,位于1.06μm的波长,其反射率低于0.70%,这意味着其光谱吸收性大于99.30%。我们讨论过的所有上面都证明,这种“挖洞频谱”PC可以实现近乎红外红外线和1.06μm的军用激光器的兼容隐身。

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