Coloured vortex beams with incoherent white light illumination

被引:0
|
作者
Hongtao Wang
Hao Wang
Qifeng Ruan
John You En Chan
Wang Zhang
Hailong Liu
Soroosh Daqiqeh Rezaei
Jonathan Trisno
Cheng-Wei Qiu
Min Gu
Joel K. W. Yang
机构
[1] Singapore University of Technology and Design,Engineering Product Development
[2] National University of Singapore,Department of Electrical and Computer Engineering
[3] Harbin Institute of Technology (Shenzhen),Ministry of Industry and Information Technology Key Lab of Micro
[4] A*STAR (Agency for Science,Nano Optoelectronic Information System
[5] Technology and Research),Institute of Materials Research and Engineering
[6] A*STAR (Agency for Science,Institute of High Performance Computing
[7] Technology and Research),Institute of Photonic Chips
[8] University of Shanghai for Science and Technology,Centre for Artificial
[9] University of Shanghai for Science and Technology,Intelligence Nanophotonics, School of Optical
来源
Nature Nanotechnology | 2023年 / 18卷
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摘要
The orbital angular momentum is a fundamental degree of freedom of light wavefronts, currently exploited in applications where information capacity is a key requirement, such as optical communication, super-resolution imaging and high-dimensional quantum computing. However, generating orbital angular momentum beams requires spatio-temporally coherent light sources (lasers or supercontinuum sources), because incoherent light would smear out the doughnut features of orbital angular momentum beams, forming polychromatic or obscured orbital angular momentum beams instead. Here we show generation of coloured orbital angular momentum beams using incoherent white light. Spatio-temporal coherence is achieved by miniaturizing spiral phase plates and integrating them with structural colour filters, three-dimensionally printed at the nanoscale. Our scheme can in principle generate multiple helical eigenstates and combine colour information into orbital angular momentum beams independently. These three-dimensional optical elements encoded with colour and orbital angular momentum information substantially increase the number of combinations for optical anti-counterfeiting and photonic lock–key devices in a pairwise fashion.
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页码:264 / 272
页数:8
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