School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138, USA.
Science. 2015 Mar 20;347(6228):1342-5. doi: 10.1126/science.aaa2494. Epub 2015 Feb 19.
The replacement of bulk refractive optical elements with diffractive planar components enables the miniaturization of optical systems. However, diffractive optics suffers from large chromatic aberrations due to the dispersion of the phase accumulated by light during propagation. We show that this limitation can be overcome with an engineered wavelength-dependent phase shift imparted by a metasurface, and we demonstrate a design that deflects three wavelengths by the same angle. A planar lens without chromatic aberrations at three wavelengths is also presented. Our designs are based on low-loss dielectric resonators, which introduce a dense spectrum of optical modes to enable dispersive phase compensation. The suppression of chromatic aberrations in metasurface-based planar photonics will find applications in lightweight collimators for displays, as well as chromatically corrected imaging systems.
用衍射平面元件替代大量折射光学元件可以实现光学系统的小型化。然而,由于光在传播过程中所积累的相位会发生色散,衍射光学元件会出现较大的色差。我们展示了通过超表面赋予的工程化的波长相关相位偏移,可以克服这一限制,并且我们还演示了一个可以以相同角度使三个波长发生偏折的设计。我们还展示了一个在三个波长处都没有色差的平面透镜设计。我们的设计基于低损耗介电谐振器,它引入了密集的光学模式谱,从而实现了色散补偿。基于超表面的平面光子学中的色差抑制将在显示器的轻量级准直器以及具有颜色校正功能的成像系统中得到应用。