Ultraviolet coherent random lasing in randomly assembled SnO2 nanowires
Hui Ying Yang, S. F. Yu, Shu Ping Lau, Siu Hon Tsang, Guozhong Xing, Tom Wu
Abstract
Hui Ying Yang, S. F. Yu, Shu Ping Lau, Siu Hon Tsang, Guozhong Xing, Tom Wu
Abstract
Although nanostructured SnO2 exhibited ultraviolet stimulated emission at room temperature, the low emission intensities and occurrence of gain saturation restricted them to be considered as luminescent materials for semiconductor lasers. In this letter, we find that a large ultraviolet excitonic gain can be obtained from SnO2 nanowires coated with an amorphous layer. Under effective pumping, ultraviolet coherent random lasing can be realized from randomly assembled SnO2 nanowires at room temperature.
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Although nanostructured SnO2 exhibited ultraviolet stimulated emission at room temperature, the low emission intensities and occurrence of gain saturation restricted them to be considered as luminescent materials for semiconductor lasers. In this letter, we find that a large ultraviolet excitonic gain can be obtained from SnO2 nanowires coated with an amorphous layer. Under effective pumping, ultraviolet coherent random lasing can be realized from randomly assembled SnO2 nanowires at room temperature.
Key concepts: Lasing threshold, Ultraviolet, Materials science, Nanowire, Optoelectronics, Laser, Amorphous solid, Amplified spontaneous emission