As‐Grown Miniaturized True Zero‐Order Waveplates Based on Low‐Dimensional Ferrocene Crystals

Author:

Li Zhipeng1ORCID,Ma Xuezhi1ORCID,Wei Fengxia1,Wang Dapeng2,Deng Zeyu3ORCID,Jiang Mengting1ORCID,Siddiquee Arif4ORCID,Qi Kun5,Zhu Di1,Zhao Meng1,Shen Mengzhe2,Canepa Pieremanuele3,Kou Shanshan4,Lin Jiao6,Wang Qian1ORCID

Affiliation:

1. Institute of Materials Research and Engineering (IMRE) Agency for Science, Technology and Research (A*STAR) 2 Fusionopolis Way, Innovis, #08‐03 Singapore 138634 Singapore

2. Institute of Biointelligence Technology BGI‐Research Shenzhen Shenzhen 518083 China

3. Department of Materials Science and Engineering National University of Singapore Singapore 117575 Singapore

4. Department of Chemistry and Physics La Trobe Institute for Molecular Science (LIMS) La Trobe University Victoria 3086 Australia

5. Institut Européen des Membranes IEM UMR 5635 Université Montpellier ENSCM CNRS Montpellier 34000 France

6. School of Engineering RMIT University Victoria 3000 Australia

Abstract

AbstractAs basic optical elements, waveplates with anisotropic electromagnetic responses are imperative for manipulating light polarization. Conventional waveplates are manufactured from bulk crystals (e.g., quartz and calcite) through a series of precision cutting and grinding steps, which typically result in large size, low yield, and high cost. In this study, a bottom‐up method is used to grow ferrocene crystals with large anisotropy to demonstrate self‐assembled ultrathin true zero‐order waveplates without additional machining processing, which is particularly suited for nanophotonic integration. The van der Waals ferrocene crystals exhibit high birefringence (Δn (experiment) = 0.149  ±  0.002 at 636 nm), low dichroism Δκ (experiment) = −0.0007 at 636 nm), and a potentially broad operating range (550 nm to 20 µm) as suggested by Density Functional Theory (DFT) calculations. In addition, the grown waveplate's highest and the lowest principal axes (n1 and n3, respectively) are in the a–c plane, where the fast axis is along one natural edge of the ferrocene crystal, rendering them readily usable. The as‐grown, wavelength‐scale‐thick waveplate allows the development of further miniaturized systems via tandem integration.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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