Giant Helical Dichroism of Single Chiral Nanostructures with Photonic Orbital Angular Momentum

被引:99
|
作者
Ni, Jincheng [1 ,2 ]
Liu, Shunli [1 ]
Hu, Guangwei [2 ]
Hu, Yanlei [1 ]
Lao, Zhaoxin [1 ]
Li, Jiawen [1 ]
Zhang, Qing [2 ]
Wu, Dong [1 ]
Dong, Shaohua [2 ]
Chu, Jiaru [1 ]
Qiu, Cheng-Wei [2 ]
机构
[1] Univ Sci & Technol China, Dept Precis Machinery & Precis Instrumentat, CAS Key Lab Mech Behav & Design Mat, Hefei 230027, Anhui, Peoples R China
[2] Natl Univ Singapore, Dept Elect & Comp Engn, Singapore 117583, Singapore
基金
新加坡国家研究基金会; 中国国家自然科学基金; 国家重点研发计划;
关键词
orbital angular momentum; planar chirality; helical dichroism; optical activity; chiral nanostructures; NONLINEAR-OPTICAL ACTIVITY; ORIGIN; METAMATERIALS; LIGHT;
D O I
10.1021/acsnano.0c08941
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Optical activity, demonstrating the chiral light-matter interaction, has attracted tremendous attention in both fundamental theoretical research and advanced applications of high-efficiency enantioselective sensing and next-generation chiroptical spectroscopic techniques. However, conventional chiroptical responses are normally limited in large assemblies of chiral materials by circularly polarized light, exhibiting extremely weak chiroptical signals in a single chiral nanostructure. Here, we demonstrate that an alternative chiral freedom of light-orbital angular momentum-can be utilized for generating strong helical dichroism in single chiral nanostructures. The helical dichroism by monochromatic vortex beams can unambiguously distinguish the intrinsic chirality of nanostructures, in an excellent agreement with theoretical predictions. The single planar-chiral nanostructure can exhibit giant helical dichroism of similar to 20% at the visible wavelength. The vortex-dependent helical dichroism, expanding to single nanostructures and two-dimensional space, has implications for high-efficiency chiroptical detection of planar-chiral nanostructures in chiral optics and nanophotonic systems.
引用
收藏
页码:2893 / 2900
页数:8
相关论文
共 50 条
  • [41] Arbitrary unitaries in orbital angular momentum of single photons
    Kysela, Jaroslav
    EPJ QUANTUM TECHNOLOGY, 2022, 9 (01)
  • [42] Arbitrary unitaries in orbital angular momentum of single photons
    Jaroslav Kysela
    EPJ Quantum Technology, 2022, 9
  • [43] Optimization of photonic crystal fibers for transmission of orbital angular momentum modes
    Liu, Chao
    Fu, Haihao
    Hu, Chunjie
    Zhou, Lei
    Shi, Ying
    Lv, Jingwei
    Yang, Lin
    Chu, Paul K.
    OPTICAL AND QUANTUM ELECTRONICS, 2021, 53 (11)
  • [44] Photonic crystal fiber for supporting 26 orbital angular momentum modes
    Hu, Zi-Ang
    Huang, Yu-Qi
    Luo, Ai-Ping
    Cui, Hu
    Luo, Zhi-Chao
    Xu, Wen-Cheng
    OPTICS EXPRESS, 2016, 24 (15): : 17285 - 17291
  • [45] Integrated photonic orbital angular momentum devices and systems: Potentials and challenges
    Cai XinLun
    Chen YuJie
    Yu SiYuan
    SCIENCE CHINA-TECHNOLOGICAL SCIENCES, 2013, 56 (03) : 579 - 585
  • [46] Photonic orbital angular momentum in turbulence: vortex splitting and adaptive optics
    Sorelli, Giacomo
    Shatokhin, Vyaceslav N.
    Buchleitner, Andreas
    ENVIRONMENTAL EFFECTS ON LIGHT PROPAGATION AND ADAPTIVE SYSTEMS III, 2020, 11532
  • [47] Fourier Transform of the Orbital Angular Momentum of a Single Photon
    Kysela, Jaroslav
    Gao, Xiaoqin
    Dakic, Borivoje
    PHYSICAL REVIEW APPLIED, 2020, 14 (03)
  • [48] Generating and identifying optical orbital angular momentum with silicon photonic circuits
    Sun, Jie
    Moresco, Michele
    Leake, Gerald
    Coolbaugh, Douglas
    Watts, Michael R.
    OPTICS LETTERS, 2014, 39 (20) : 5977 - 5980
  • [49] Integrated photonic orbital angular momentum devices and systems: Potentials and challenges
    XinLun Cai
    YuJie Chen
    SiYuan Yu
    Science China Technological Sciences, 2013, 56 : 579 - 585
  • [50] Integrated photonic orbital angular momentum devices and systems:Potentials and challenges
    CAI XinLun
    CHEN YuJie
    YU SiYuan
    Science China(Technological Sciences), 2013, (03) : 579 - 585