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封装在薄聚合物薄膜中的染料掺杂手性微滴实现温度可调谐激光发射。

Temperature-tunable lasing from dye-doped chiral microdroplets encapsulated in a thin polymeric film.

作者信息

Petriashvili Gia, Bruno Mauro Daniel Luigi, De Santo Maria Penelope, Barberi Riccardo

机构信息

Institute of Cybernetics of the Georgian Technical University, Tbilisi 0175, Georgia.

Physics Department, University of Calabria, Rende 87036, Italy.

出版信息

Beilstein J Nanotechnol. 2018 Jan 31;9:379-383. doi: 10.3762/bjnano.9.37. eCollection 2018.

Abstract

In the last decade, much interest has grown around the possibility to use liquid-crystal droplets as optical microcavities and lasers. In particular, 3D laser emission from dye-doped cholesteric liquid crystals confined inside microdroplets paves the way for many applications in the field of sensors or tunable photonics. Several techniques can be used to obtain small microresonators as, for example, dispersing a liquid crystal inside an immiscible isotropic fluid to create an emulsion. Recently, the possibility to obtain a thin free-standing film starting from an emulsion having a mixture of water and polyvinyl alcohol as isotropic matrix has been reported. After the water evaporation, a polymeric film in which the microdroplets are encapsulated has been obtained. Bragg-type laser emission has been recorded from the emulsion as well as from the thin film. Here, we report on the possibility to tune the laser emission as a function of temperature. Using a chiral dopant with temperature dependent solubility, the emitted laser wavelength can be tuned in a range of 40 nm by a temperature variation of 18 °C. The proposed device can have applications in the field of sensors and for the development of anti-counterfeiting labels.

摘要

在过去十年中,人们对将液晶微滴用作光学微腔和激光器的可能性越来越感兴趣。特别是,限制在微滴内的染料掺杂胆甾相液晶的三维激光发射为传感器或可调谐光子学领域的许多应用铺平了道路。可以使用几种技术来获得小型微谐振器,例如,将液晶分散在不混溶的各向同性流体中以形成乳液。最近,已经报道了从具有水和聚乙烯醇混合物作为各向同性基质的乳液开始获得薄的独立膜的可能性。水蒸发后,得到了包裹有微滴的聚合物膜。已经从乳液以及薄膜中记录到了布拉格型激光发射。在此,我们报道了根据温度调节激光发射的可能性。使用具有温度依赖性溶解度的手性掺杂剂,通过18°C的温度变化,发射的激光波长可以在40nm的范围内调节。所提出的装置可应用于传感器领域以及用于开发防伪标签。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2fe8/5815278/590608b32c3f/Beilstein_J_Nanotechnol-09-379-g002.jpg

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