Low-threshold random lasers enhanced by titanium nitride nanoparticles suspended randomly in gain solutions
Author(s) -
Yuan Wan,
Zhen Wang,
Hongwen Li,
Ruiqi Ye,
Xinyu Zhang,
Jing Lyu,
Yangjian Cai
Publication year - 2022
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.451428
Subject(s) - random laser , tin , materials science , laser , titanium nitride , optics , optoelectronics , nanoparticle , slope efficiency , fiber laser , nanotechnology , nitride , physics , layer (electronics) , lasing threshold , metallurgy
In this article, we report a low-threshold random laser enhanced by TiN nanoparticles (NPs) suspended randomly in gain solutions. Results show that the random laser with TiN NPs has a lower threshold than the random laser with TiO 2 NPs and the underlying mechanisms are discussed in detail. The localized surface plasmon resonance of individual TiN NPs increases the pump efficiency and strengthens the fluorescence amplification efficiency of the DCM. The multiple scattering of integral TiN NPs extends the dwelling time of light in random systems, which provides more possibilities for the light amplification in the gain medium. Then, the random laser threshold as a function of the number density of TiN NPs is studied. Results show that the optimum number density of TiN NPs for the lowest-threshold random lasers is about 1.468 × 10 12 ml -1 . When we substitute the ethanol solution with the nematic liquid crystal (NLC), the random laser threshold can be further decreased to 5.11 µJ/pulse, which is about 7.7 times lower than that of DCM dye solution with TiN NPs under the same conditions. These findings provide a cost-effective strategy for the realization of low-threshold random lasers with high-quality.
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