Morello Giovanni, Manco Rita, Moffa Maria, Persano Luana, Camposeo Andrea, Pisignano Dario
Istituto Nanoscienze-CNR, Euromediterranean Center for Nanomaterial Modelling and Technology (ECMT) , via Arnesano, Lecce I-73100, Italy.
Center for Biomolecular Nanotechnologies @UNILE, Istituto Italiano di Tecnologia , Via Barsanti, I-73010 Arnesano, LE, Italy.
ACS Appl Mater Interfaces. 2015 Oct 7;7(39):21907-12. doi: 10.1021/acsami.5b06483. Epub 2015 Sep 24.
The use of UV light sources is highly relevant in many fields of science, being directly related to all those detection and diagnosis procedures that are based on fluorescence spectroscopy. Depending on the specific application, UV light-emitting materials are desired to feature a number of opto-mechanical properties, including brightness, optical gain for being used in laser devices, flexibility to conform with different lab-on-chip architectures, and tailorable wettability to control and minimize their interaction with ambient humidity and fluids. In this work, we introduce multifunctional, UV-emitting electrospun fibers with both optical gain and greatly enhanced anisotropic hydrophobicity compared to films. Fibers are described by the onset of a composite wetting state, and their arrangement in uniaxial arrays further favors liquid directional control. The low gain threshold, optical losses, plastic nature, flexibility, and stability of these UV-emitting fibers make them interesting for building light-emitting devices and microlasers. Furthermore, the anisotropic hydrophobicity found is strongly synergic with optical properties, reducing interfacial interactions with liquids and enabling smart functional surfaces for droplet microfluidic and wearable applications.
紫外线光源的使用在许多科学领域都具有高度相关性,与所有基于荧光光谱的检测和诊断程序直接相关。根据具体应用的不同,人们期望紫外线发光材料具备多种光机械性能,包括亮度、用于激光设备的光学增益、适应不同芯片实验室架构的灵活性以及可定制的润湿性,以控制并最小化其与环境湿度和流体的相互作用。在这项工作中,我们引入了多功能的紫外线发射电纺纤维,与薄膜相比,其具有光学增益且各向异性疏水性大大增强。纤维由复合润湿状态的起始点来描述,并且它们在单轴阵列中的排列进一步有利于液体的方向控制。这些紫外线发射纤维的低增益阈值、光学损耗、可塑性、柔韧性和稳定性使其对于构建发光器件和微型激光器具有吸引力。此外,所发现的各向异性疏水性与光学性质具有很强的协同作用,减少了与液体的界面相互作用,并为微滴微流体和可穿戴应用实现了智能功能表面。