Mechanical Processing of Naturally Bent Organic Crystalline Microoptical Waveguides and Junctions

39Citations
Citations of this article
17Readers
Mendeley users who have this article in their library.

Abstract

Precise mechanical processing of optical microcrystals involves complex microscale operations viz. moving, bending, lifting, and cutting of crystals. Some of these mechanical operations can be implemented by applying mechanical force at specific points of the crystal to fabricate advanced crystalline optical junctions. Mechanically compliant flexible optical crystals are ideal candidates for the designing of such microoptical junctions. A vapor-phase growth of naturally bent optical waveguiding crystals of 1,4-bis(2-cyanophenylethynyl)benzene (1) on a surface forming different optical junctions is presented. In the solid-state, molecule 1 interacts with its neighbors via CH···N hydrogen bonding and p–p stacking. The microcrystals deposited at a glass surface exhibit moderate flexibility due to substantial surface adherence energy. The obtained network crystals also display mechanical compliance when cut precisely with sharp atomic force microscope cantilever tip, making them ideal candidates for building innovative T- and ?-shaped optical junctions with multiple outputs. The presented micromechanical processing technique can also be effectively used as a tool to fabricate single-crystal integrated photonic devices and circuits on suitable substrates.

Cite

CITATION STYLE

APA

Vinay Pradeep, V., Tardío, C., Torres-Moya, I., Rodríguez, A. M., Vinod Kumar, A., Annadhasan, M., … Chandrasekar, R. (2021). Mechanical Processing of Naturally Bent Organic Crystalline Microoptical Waveguides and Junctions. Small, 17(3). https://doi.org/10.1002/smll.202006795

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free