论文标题
基于DNA的激光纤维中的染料稳定性和波长可调性
Dye stabilization and wavelength tunability in lasing fibers based on DNA
论文作者
论文摘要
基于生物材料的激光器在综合和瞬时光子学中的使用引起了人们的兴趣。据报道,DNA作为光学生物聚合物与高发射染料结合使用,在这方面具有良好的潜力,但是基于在不同几何形状的固体DNA基于不同几何形状的固体和增强排放的固体DNA系统仍然是一个挑战,仍然是一个挑战,并且尚不完全理解生理学机制,尚未充分理解。在此,证明了基于DNA纳米纤维的一类波长 - 可接合激光器,用于通过系统形态来高度控制光学特性。在激光行动的基础上突出了协同作用。通过量子化学研究,我们表明DNA与封装的染料的相互作用导致非辐射衰减的阻碍扭曲和抑制通道。这与有效的波导,光学增益和量身定制的模式约束相结合,以促进基于DNA的纳米纤维中形态控制的激光。结果为基于DNA纳米结构的明亮可调纳米层和光网络的开发建立了设计规则。
Lasers based on biological materials are attracting an increasing interest in view of their use in integrated and transient photonics. DNA as optical biopolymer in combination with highly-emissive dyes has been reported to have excellent potential in this respect, however achieving miniaturized lasing systems based on solid-state DNA shaped in different geometries to confine and enhance emission is still a challenge, and physico-chemical mechanisms originating fluorescence enhancement are not fully understood. Herein, a class of wavelength-tunable lasers based on DNA nanofibers is demonstrated, for which optical properties are highly controlled through the system morphology. A synergistic effect is highlighted at the basis of lasing action. Through a quantum chemical investigation, we show that the interaction of DNA with the encapsulated dye leads to hindered twisting and suppressed channels for the non-radiative decay. This is combined with effective waveguiding, optical gain, and tailored mode confinement to promote morphologically-controlled lasing in DNA-based nanofibers. The results establish design rules for the development of bright and tunable nanolasers and optical networks based on DNA nanostructures.