Du Luping, Kou Shan Shan, Balaur Eugeniu, Cadusch Jasper J, Roberts Ann, Abbey Brian, Yuan Xiao-Cong, Tang Dingyuan, Lin Jiao
Nanophotonics Research Centre, Shenzhen University &Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
School of Electrical and Electronic Engineering, Nanyang Technological University, Singapore 639798, Singapore.
Nat Commun. 2015 Dec 2;6:10051. doi: 10.1038/ncomms10051.
The behaviour of light transmitted through an individual subwavelength aperture becomes counterintuitive in the presence of surrounding 'decoration', a phenomenon known as the extraordinary optical transmission. Despite being polarization-sensitive, such an individual nano-aperture, however, often cannot differentiate between the two distinct spin-states of photons because of the loss of photon information on light-aperture interaction. This creates a 'blind-spot' for the aperture with respect to the helicity of chiral light. Here we report the development of a subwavelength aperture embedded with metasurfaces dubbed a 'meta-aperture', which breaks this spin degeneracy. By exploiting the phase-shaping capabilities of metasurfaces, we are able to create specific meta-apertures in which the pair of circularly polarized light spin-states produces opposite transmission spectra over a broad spectral range. The concept incorporating metasurfaces with nano-apertures provides a venue for exploring new physics on spin-aperture interaction and potentially has a broad range of applications in spin-optoelectronics and chiral sensing.
在存在周围“装饰”的情况下,透过单个亚波长孔径传输的光的行为变得违反直觉,这种现象被称为超常光学传输。尽管这种单个纳米孔径对偏振敏感,但由于光与孔径相互作用中光子信息的丢失,它通常无法区分光子的两种不同自旋态。这就造成了孔径在手性光螺旋度方面的“盲点”。在此,我们报告了一种嵌入超表面的亚波长孔径(称为“超孔径”)的研发,它打破了这种自旋简并。通过利用超表面的相位整形能力,我们能够创建特定的超孔径,其中一对圆偏振光自旋态在很宽的光谱范围内产生相反的透射光谱。将超表面与纳米孔径相结合的概念为探索自旋与孔径相互作用的新物理提供了一个途径,并且在自旋光电子学和手性传感方面可能有广泛的应用。