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Spatially controllable and mechanically switchable isomorphous organoferroeleastic crystal optical waveguides and networks.


ABSTRACT: The precise, reversible, and diffusionless shape-switching ability of organic ferroelastic crystals, while maintaining their structural integrity, positions them as promising materials for next-generation hybrid photonic devices. Herein, we present versatile bi-directional ferroelasticity and optical waveguide properties of three isomorphous, halogen-based, Schiff base organic crystals. These crystals exhibit sharp bending at multiple interfaces driven by molecular movement around the CH = N bond and subsequent 180° rotational twinning, offering controlled light path manipulation. The ferroelastic nature of these crystals allowed the construction of robust hybrid photonic structures, including Z-shaped configurations, closed-loop networks, and staircase-like hybrid optical waveguides. This study highlights the potential of shape-switchable organoferroelastic crystals as waveguides for applications in programmable photonic devices.

SUBMITTER: Ranjan S 

PROVIDER: S-EPMC11362157 | biostudies-literature | 2024 Aug

REPOSITORIES: biostudies-literature

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Spatially controllable and mechanically switchable isomorphous organoferroeleastic crystal optical waveguides and networks.

Ranjan Subham S   Kumar Avulu Vinod AV   Chandrasekar Rajadurai R   Takamizawa Satoshi S  

Nature communications 20240829 1


The precise, reversible, and diffusionless shape-switching ability of organic ferroelastic crystals, while maintaining their structural integrity, positions them as promising materials for next-generation hybrid photonic devices. Herein, we present versatile bi-directional ferroelasticity and optical waveguide properties of three isomorphous, halogen-based, Schiff base organic crystals. These crystals exhibit sharp bending at multiple interfaces driven by molecular movement around the CH = N bon  ...[more]

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