Haider Golam, Lin Hung-I, Yadav Kanchan, Shen Kun-Ching, Liao Yu-Ming, Hu Han-Wen, Roy Pradip Kumar, Bera Krishna Prasad, Lin Kung-Hsuan, Lee Hsien-Ming, Chen Yit-Tsong, Chen Fu-Rong, Chen Yang-Fang
Department of Engineering and System Science , National Tsing Hua University , Hsinchu 300 , Taiwan.
Nano-Science and Technology Program, Taiwan International Graduate Program , Academia Sinica , Taipei 115 , Taiwan.
ACS Nano. 2018 Dec 26;12(12):11847-11859. doi: 10.1021/acsnano.8b03035. Epub 2018 Oct 26.
Production of multicolor or multiple wavelength lasers over the full visible-color spectrum from a single chip device has widespread applications, such as superbright solid-state lighting, color laser displays, light-based version of Wi-Fi (Li-Fi), and bioimaging, etc. However, designing such lasing devices remains a challenging issue owing to the material requirements for producing multicolor emissions and sophisticated design for producing laser action. Here we demonstrate a simple design and highly efficient single segment white random laser based on solution-processed NaYF:Yb/Er/Tm@NaYF:Eu core-shell nanoparticles assisted by Au/MoO multilayer hyperbolic meta-materials. The multicolor lasing emitted from core-shell nanoparticles covering the red, green, and blue, simultaneously, can be greatly enhanced by the high photonic density of states with a suitable design of hyperbolic meta-materials, which enables decreasing the energy consumption of photon propagation. As a result, the energy upconversion emission is enhanced by ∼50 times with a drastic reduction of the lasing threshold. The multiple scatterings arising from the inherent nature of the disordered nanoparticle matrix provide a convenient way for the formation of closed feedback loops, which is beneficial for the coherent laser action. The experimental results were supported by the electromagnetic simulations derived from the finite-difference time-domain (FDTD) method. The approach shown here can greatly simplify the design of laser structures with color-tunable emissions, which can be extended to many other material systems. Together with the characteristics of angle free laser action, our device provides a promising solution toward the realization of many laser-based practical applications.
从单个芯片器件产生覆盖整个可见光谱的多色或多波长激光器具有广泛的应用,如超亮固态照明、彩色激光显示器、基于光的Wi-Fi(Li-Fi)以及生物成像等。然而,由于产生多色发射的材料要求以及产生激光作用的复杂设计,设计此类激光器件仍然是一个具有挑战性的问题。在此,我们展示了一种基于溶液处理的NaYF:Yb/Er/Tm@NaYF:Eu核壳纳米粒子并由Au/MoO多层双曲线超材料辅助的简单设计且高效的单段白色随机激光器。通过双曲线超材料的适当设计,具有高光子态密度可极大增强从核壳纳米粒子同时发射的覆盖红、绿、蓝的多色激光,这使得光子传播的能量消耗得以降低。结果,能量上转换发射增强了约50倍,同时激光阈值大幅降低。无序纳米粒子基质的固有性质产生的多次散射为形成封闭反馈回路提供了一种便捷方式,这有利于相干激光作用。实验结果得到了基于有限时域差分(FDTD)方法的电磁模拟的支持。此处展示的方法可极大简化具有颜色可调发射的激光结构的设计,该设计可扩展到许多其他材料系统。连同无角度激光作用的特性,我们的器件为实现许多基于激光的实际应用提供了一个有前景的解决方案。