Zhao Jing, Chen Huan, Song Kun, Xiang Liqin, Zhao Qian, Shang Chaohong, Wang Xiaonong, Shen Zhijie, Wu Xianfeng, Hu Yajie, Zhao Xiaopeng
Medtronic plc, Boulder, CO 80301, USA.
Smart Materials Laboratory, Department of Applied Physics, Northwestern Polytechnical University, Xi'an 710129, P. R. China.
Nanophotonics. 2022 May 13;11(12):2953-2966. doi: 10.1515/nanoph-2022-0171. eCollection 2022 Jun.
Optical metamaterials give birth to the control and regulation of light. However, because of strong energy dissipation and fabrication difficulty in meta-atoms, low-loss isotropic three dimensional negative index metamaterials (NIMs) in the visible spectrum has long been regarded as an extremely challenging. Here, we report an ultralow loss isotropic metamaterials for visible light and its inverse Doppler effect. The ball-thorn-shaped metaclusters with symmetrical structure consisting of the dielectric and its surface dispersed super-thin silver layer was proposed, the surface plasma resonance is formed by discrete silver layer with a thickness of two or three atomic layers. We invented a unique technique for preparing ultralow loss isotropic clusters and three-dimensional large block samples. The negative refractive index and the inverse Doppler effect of green and red light is measured by the prism method for the first time. The discrete super-thin silver layer produced by the photoreduction method greatly reduces the generation of loss and break through noble metal high energy losses of traditional optical frequency metamaterial, the metaclusters unfold bottleneck of the nano-assemble visible light metamaterials, opening a door for disorder assembling ultralow loss isotropic three-dimensional large block NIMs devices of arbitrary shape.
光学超材料实现了对光的控制和调控。然而,由于超原子中存在强烈的能量耗散以及制造困难,可见光谱中的低损耗各向同性三维负折射率超材料(NIMs)长期以来一直被认为极具挑战性。在此,我们报道了一种用于可见光的超低损耗各向同性超材料及其逆多普勒效应。我们提出了由电介质及其表面分散的超薄银层组成的具有对称结构的球刺状超团簇,由两到三个原子层厚度的离散银层形成表面等离子体共振。我们发明了一种制备超低损耗各向同性团簇和三维大块样品的独特技术。首次通过棱镜法测量了绿光和红光的负折射率及逆多普勒效应。通过光还原法产生的离散超薄银层极大地减少了损耗的产生,并突破了传统光学频率超材料中贵金属的高能量损耗,超团簇突破了纳米组装可见光超材料的瓶颈,为任意形状的无序组装超低损耗各向同性三维大块NIMs器件打开了一扇门。