Opto-Electronic Engineering, Volume. 50, Issue 7, 230095(2023)

Femtosecond laser printing of vanadium dioxide based optical meta-structures with tunable spectra engineering

Jiaqi Zhu, Shiyu Wu, Shichao Song*, and Yaoyu Cao
Author Affiliations
  • Guangdong Provincial Key Laboratory of Optical Fiber Sensing and Communications, Institute of Photonics Technology, Jinan University, Guangzhou, Guangdong 511443, China
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    Over the past few years, the field of micro-/nano- photonics has witnessed a surge in research focused on developing innovative optical devices that offer dynamic spectra engineering. Among the materials showing promise in this area, vanadium dioxide (VO2) can actively manipulate its refractive index via a phase transition process, enabling the dynamic manipulation of spectra. In this work, a photosensitive polymer nanocomposite with tunable effective refractive index is prepared by incorporating VO2 nanocrystals into methacrylate monomers, which takes advantages of the phase change characteristics of VO2 and the photopolymerization properties of the monomer. In addition, with the aid of the state-of-the-art femtosecond laser processing technology, highly precise two-dimensional and three-dimensional micro-/nano- optical structures embedded with the phase change capabilities outlined by VO2 are achieved. Fascinatingly, the spectra measurements via Fourier transform infrared spectrometer reveal that when subjected to the critical phase transition temperatures, the printed micro-/nano- structures will undergo a thermally induced phase transition of the VO2 nanocrystals embedded within them. Consequently, there is a discernible alteration in the effective refractive index of the optically functionalized structure, inspiring the dynamic manipulation of the short-band spectra.

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    Jiaqi Zhu, Shiyu Wu, Shichao Song, Yaoyu Cao. Femtosecond laser printing of vanadium dioxide based optical meta-structures with tunable spectra engineering[J]. Opto-Electronic Engineering, 2023, 50(7): 230095

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    Paper Information

    Category: Article

    Received: Apr. 25, 2023

    Accepted: Jul. 11, 2023

    Published Online: Sep. 25, 2023

    The Author Email:

    DOI:10.12086/oee.2023.230095

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