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天然弯曲有机晶体微光波导和结的机械加工

Mechanical Processing of Naturally Bent Organic Crystalline Microoptical Waveguides and Junctions.

作者信息

Vinay Pradeep Vuppu, Tardío Carlos, Torres-Moya Iván, Rodríguez Ana M, Vinod Kumar Avulu, Annadhasan Mari, de la Hoz Antonio, Prieto Pilar, Chandrasekar Rajadurai

机构信息

School of Chemistry, University of Hyderabad, Prof. C. R. Rao Road, Gachibowli, Hyderabad, 50046, India.

Centre for Nanotechnology, University of Hyderabad, Prof. C. R. Rao Road, Gachibowli, Hyderabad, 50046, India.

出版信息

Small. 2021 Jan;17(3):e2006795. doi: 10.1002/smll.202006795. Epub 2020 Dec 23.

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 CH⋅⋅⋅N hydrogen bonding and π-π 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 Δ-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.

摘要

光学微晶的精密机械加工涉及复杂的微观操作,即晶体的移动、弯曲、提升和切割。其中一些机械操作可以通过在晶体的特定点施加机械力来实现,以制造先进的晶体光学结。机械柔顺的柔性光学晶体是设计此类微光学结的理想候选材料。本文介绍了1,4-双(2-氰基苯乙炔基)苯(1)的自然弯曲光波导晶体在形成不同光学结的表面上的气相生长。在固态中,分子1通过CH⋅⋅⋅N氢键和π-π堆积与其相邻分子相互作用。由于大量的表面粘附能,沉积在玻璃表面的微晶表现出适度的柔韧性。当用尖锐的原子力显微镜悬臂尖端精确切割时,所获得的网络晶体也显示出机械柔顺性,使其成为构建具有多个输出的创新T形和三角形光学结的理想候选材料。本文提出的微机械加工技术还可以有效地用作在合适的衬底上制造单晶集成光子器件和电路的工具。

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