Fu Pan, Ni Pei-Nan, Wu Bo, Pei Xian-Zhi, Wang Qiu-Hua, Chen Pei-Pei, Xu Chen, Kan Qiang, Chu Wei-Guo, Xie Yi-Yang
Key Laboratory of Optoelectronics Technology, Ministry of Education, Beijing University of Technology, Beijing, 100124, China.
Faculty of Engineering and Natural Science, Tampere University, Tampere, 33720, Finland.
Adv Mater. 2023 Mar;35(12):e2204286. doi: 10.1002/adma.202204286. Epub 2023 Feb 22.
Metasurface polarization optics that consist of 2D array of birefringent nano-antennas have proven remarkable capabilities to generate and manipulate vectorial fields with subwavelength resolution and high efficiency. Integrating this new type of metasurface with the standard vertical cavity surface-emitting laser (VCSEL) platform enables an ultracompact and powerful solution to control both phase and polarization properties of the laser on a chip, which allows to structure a VCSEL into vector beams with on-demand wavefronts. Here, this concept is demonstrated by directly generating versatile vector beams from commercially available VCSELs through on-chip integration of high-index dielectric metasurfaces. Experimentally, the versatility of the approach for the development of vectorial VCSELs are validated by implementing a variety of functionalities, including directional emission of multibeam with specified polarizations, vectorial holographic display, and vector vortex beams generations. Notably, the proposed vectorial VCSELs integrated with a single layer of beam shaping metasurface bypass the requirements of multiple cascaded optical components, and thus have the potential to promote the advancements of ultracompact, lightweight, and scalable vector beams sources, enriching and expanding the applications of VCSELs in optical communications, laser manipulation and processing, information encryption, and quantum optics.
由双折射纳米天线二维阵列组成的超表面偏振光学器件已被证明具有显著的能力,能够以亚波长分辨率和高效率生成和操纵矢量场。将这种新型超表面与标准垂直腔面发射激光器(VCSEL)平台集成,可为在芯片上控制激光器的相位和偏振特性提供一种超紧凑且强大的解决方案,从而能够将VCSEL构建成具有按需波前的矢量光束。在此,通过在芯片上集成高折射率介质超表面,从市售VCSEL直接生成多种矢量光束,证明了这一概念。在实验中,通过实现多种功能,包括具有特定偏振的多光束定向发射、矢量全息显示和矢量涡旋光束生成,验证了开发矢量VCSEL方法的多功能性。值得注意的是,所提出的与单层光束整形超表面集成的矢量VCSEL绕过了对多个级联光学元件的需求,因此有潜力推动超紧凑、轻量级和可扩展矢量光束源的发展,丰富和扩展VCSEL在光通信、激光操纵与加工、信息加密和量子光学中的应用。