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When optical vortex array meets cycloid

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Optical vortex arrays (OVAs) have drawn widespread attention owing to their multiple optical vortices and higher dimensions. However, existing OVAs have not yet been utilized to exploit the synergy effect as an entire system, particularly for manipulating multiple particles. Thus, the functionality of OVA should be explored to respond to application requirements. Hence, this study proposes a functional OVA, called cycloid OVA (COVA), based on a combination of cycloid and phase-shift techniques. By modifying the cycloid equation, multiple structural parameters are designed to modulate the structure of the COVAs. Subsequently, versatile and functional COVAs are experimentally generated and modulated. In particular, COVA executes local dynamic modulation, whereas the entire structure remains unchanged. Further, the optical gears are first designed using two COVAs, which exhibit potential for transferring multiple particles. Essentially, OVA is endowed the characteristics and capacity of the cycloid when they meet. This work provides an alternative scheme to generate OVAs, which will open up advanced applications for the complex manipulation, arrangement and transfer of multiple particles.
Title: When optical vortex array meets cycloid
Description:
Optical vortex arrays (OVAs) have drawn widespread attention owing to their multiple optical vortices and higher dimensions.
However, existing OVAs have not yet been utilized to exploit the synergy effect as an entire system, particularly for manipulating multiple particles.
Thus, the functionality of OVA should be explored to respond to application requirements.
Hence, this study proposes a functional OVA, called cycloid OVA (COVA), based on a combination of cycloid and phase-shift techniques.
By modifying the cycloid equation, multiple structural parameters are designed to modulate the structure of the COVAs.
Subsequently, versatile and functional COVAs are experimentally generated and modulated.
In particular, COVA executes local dynamic modulation, whereas the entire structure remains unchanged.
Further, the optical gears are first designed using two COVAs, which exhibit potential for transferring multiple particles.
Essentially, OVA is endowed the characteristics and capacity of the cycloid when they meet.
This work provides an alternative scheme to generate OVAs, which will open up advanced applications for the complex manipulation, arrangement and transfer of multiple particles.

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