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Wide-angle and full-angle negative reflection based on metasurfaces with specific surface phase gradient

机译:基于具有特定表面相位梯度的Metasurfaces的广角和全角度负反射

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Metasurface, an ultrathin planar profile novel wavefront manipulating device, is a hot spot of research on metamaterials in recent years. As for metasurface having a constant surface phase gradient, it can be totally described by the generalized law of refraction and reflection, which has been theoretically and experimentally verified perfectly. According to the generalized Snell's law, there exists a limited range of incident angle which enables the existence of negative reflection and refraction, and anomalous reflection and refraction is also limited to take place at the domain defined by the critical angle. However, wide-angle or even full-angle negative reflection and refraction is desired for their huge potential of novel wavefront modulation applications. In the present work, we discuss the possibility of wide-angle and full-angle negative reflection through the generalized law of reflection, and point out that wide-angle negative reflection can be obtained when the surface phase gradient of metasurface is greater than the operating wavenumber and full-angle negative reflection can be obtained when the surface phase gradient of metasurface is equal to the operating wavenumber. In order to test the validity of our theory, we calculate the reflected acoustic field of two acoustic metasurfaces which having surface phase gradient greater than and equal to the operating wavenumber accordingly. The metasurfaces we use here are composed by deep subwavelength comb-like subunits which are able to manipulate the reflected phase from 0 to 360 degree with near unit reflection coefficient and thus provide more advantages in realizing the large surface phase gradient on demand with acceptable wavefront modulation precision. Simulation results verify the wide-angle and full-angle negative reflection perfectly and any novel acoustic wavefront modulating devices that take advantage of negative reflectionMetasurface, an ultrathin planar profile novel wavefront manipulating device, is a hot spot of research on metamaterials in recent years. As for metasurface having a constant surface phase gradient, it can be totally described by the generalized law of refraction and reflection, which has been theoretically and experimentally verified perfectly. According to the generalized Snell's law, there exists a limited range of incident angle which enables the existence of negative reflection and refraction, and anomalous reflection and refraction is also limited to take place at the domain defined by the critical angle. However, wide-angle or even full-angle negative reflection and refraction is desired for their huge potential of novel wavefront modulation applications. In the present work, we discuss the possibility of wide-angle and full-angle negative reflection through the generalized law of reflection, and point out that wide-angle negative reflection can be obtained when the surface phase gradient of metasurface is greater than the operating wavenumber and full-angle negative reflection can be obtained when the surface phase gradient of metasurface is equal to the operating wavenumber. In order to test the validity of our theory, we calculate the reflected acoustic field of two acoustic metasurfaces which having surface phase gradient greater than and equal to the operating wavenumber accordingly. The metasurfaces we use here are composed by deep subwavelength comb-like subunits which are able to manipulate the reflected phase from 0 to 360 degree with near unit reflection coefficient and thus provide more advantages in realizing the large surface phase gradient on demand with acceptable wavefront modulation precision. Simulation results verify the wide-angle and full-angle negative reflection perfectly and any novel acoustic wavefront modulating devices that take advantage of negative reflection can be designed and fabricated in future. can be designed and fabricated in future.
机译:Metasurface是一种超薄平面轮廓新颖的波前操作装置,是近年来超材料研究的热点。对于具有恒定表面相位梯度的元表面,它可以完全由折射和反射的广义定律来描述,这在理论上和实验上完全验证。根据广义的Snell的定律,存在有限范围的入射角,其能够存在负反射和折射,并且异常反射和折射也仅限于由临界角度定义的域处发生。然而,期望广角甚至全角负反射和折射,以获得其新的波前调制应用的巨大潜力。在目前的工作中,我们通过广义反射定律讨论了广角和全角度负面反射的可能性,并指出,当元表面的表面相位梯度大于操作时,可以获得广角负反射当元表面的表面相位梯度等于操作波数时,可以获得波数和全角度负反射。为了测试我们理论的有效性,我们计算具有大于和等于操作波数的表面相位梯度的两个声学元件的反射声场。我们在这里使用的元件由深亚主波长梳状子单元组成,能够将反射相位从0到360度操纵,并且在接近近单位反射系数方面提供了更优点,以便以可接受的波前调制实现大的表面相位梯度精确。仿真结果验证了广角和全角度的负面反射和任何新的声波前沿调节装置,利用负面反射扫描器,这是一种超薄平面简介的近似波前操作装置,是近年来超材料研究的热点。对于具有恒定表面相位梯度的元表面,它可以完全由折射和反射的广义定律来描述,这在理论上和实验上完全验证。根据广义的Snell的定律,存在有限范围的入射角,其能够存在负反射和折射,并且异常反射和折射也仅限于由临界角度定义的域处发生。然而,期望广角甚至全角负反射和折射,以获得其新的波前调制应用的巨大潜力。在目前的工作中,我们通过广义反射定律讨论了广角和全角度负面反射的可能性,并指出,当元表面的表面相位梯度大于操作时,可以获得广角负反射当元表面的表面相位梯度等于操作波数时,可以获得波数和全角度负反射。为了测试我们理论的有效性,我们计算具有大于和等于操作波数的表面相位梯度的两个声学元件的反射声场。我们在这里使用的元件由深亚主波长梳状子单元组成,能够将反射相位从0到360度操纵,并且在接近近单位反射系数方面提供了更优点,以便以可接受的波前调制实现大的表面相位梯度精确。仿真结果验证了广角和全角度负反射完美,以及任何采用负面反射的新型声学波边调制装置,都可以在将来设计和制造。可以将来设计和制造。

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