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Fiber-Integrated Reversibly Wavelength-Tunable Nanowire Laser Based on Nanocavity Mode Coupling

  • Ming Hua Zhuge
  • , Zongyin Yang
  • , Jianpei Zhang
  • , Yazhi Zheng
  • , Qinghai Song
  • , Chenlei Pang
  • , Xu Liu
  • , Salman Ullah
  • , Caofeng Pan
  • , Nagarajan Raghavan
  • , Xing Hong Zhang
  • , Haifeng Li
  • , Yaoguang Ma*
  • , Qing Yang
  • , Tawfique Hasan
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

As an ideal miniaturized light source, wavelength-tunable nanolasers capable of emitting a wide spectrum stimulate intense interests for on-chip optoelectronics, optical communications, and spectroscopy. However, realization of such devices remains a major challenge because of extreme difficulties in achieving continuously reversibly tunable gain media and high quality (Q)-factor resonators on the nanoscale simultaneously. Here, exploiting single bandgap-graded CdSSe NWs and a Fabry-Pérot/whispering gallery mode (FP/WGM) coupling cavity, a free-standing fiber-integrated reversibly wavelength-tunable nanolaser covering a 42 nm wide spectrum at room temperature with high stability and reproducibility is demonstrated. In addition, a 1.13 nm tuning spectral resolution is realized. The substrate-free device design enables integration in optical fiber communications and information. With reversible and wide, continuous tunability of emission color and precise control per step, our work demonstrates a general approach to nanocavity coupling affording high Q-factors, enabling an ideal miniaturized module for a broad range of applications in optics and optoelectronics, with optical fiber integration.

Original languageEnglish
Pages (from-to)9965-9972
Number of pages8
JournalACS Nano
Volume13
Issue number9
DOIs
StatePublished - 24 Sep 2019
Externally publishedYes

Keywords

  • fiber-integrated
  • individual nanostructure
  • nanocavity coupling
  • nanolaser
  • wavelength reversibly tuning

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