Literature DB >> 32052962

An Electrically Controlled Wavelength-Tunable Nanoribbon Laser.

Xin Yang1, Zhengping Shan2, Ziyu Luo1, Xuelu Hu1, Huawei Liu1, Qingbo Liu3, Yushuang Zhang1, Xuehong Zhang1, Muhammad Shoaib1, Junyu Qu1, Xiao Yi1, Xiao Wang1, Xiaoli Zhu1, Yuan Liu3, Lei Liao3, Xingjun Wang4, Shula Chen1, Anlian Pan1.   

Abstract

Nanoscale laser sources with downscaled device footprint, high energy efficiency, and high operation speed are pivotal for a wide array of optoelectronic and nanophotonic applications ranging from on-chip interconnects, nanospectroscopy, and sensing to optical communication. The capability of on-demand lasing output with reversible and continuous wavelength tunability over a broad spectral range enables key functionalities in wavelength-division multiplexing and finely controlled light-matter interaction, which remains an important subject under intense research. In this study, we demonstrate an electrically controlled wavelength-tunable laser based on a CdS nanoribbon (NR) structure. Typical "S"-shaped characteristics of pump power dependence were observed for dominant lasing lines, with concomitant line width narrowing. By applying an increased bias voltage across the NR device, the lasing resonance exhibits a continuous tuning from 510 to 520 nm for a bias field in the range 0-15.4 kV/cm. Systematic bias-dependent absorption and time-resolved photoluminescence (PL) measurements were performed, revealing a red-shifted band edge of gain medium and prolonged PL lifetime with increased electric field over the device. Both current-induced thermal reduction of the band gap and the Franz-Keldysh effect were identified to account for the modification of the lasing profile, with the former factor playing the leading role. Furthermore, dynamical switching of NR lasing was successfully demonstrated, yielding a modulation ratio up to ∼21 dB. The electrically tuned wavelength-reversible CdS NR laser in this work, therefore, presents an important step toward color-selective coherent emitters for future chip-based nanophotonic and optoelectronic circuitry.

Entities:  

Keywords:  cadmium sulfide; electrical control; individual nanoribbon; nanolaser; wavelength-tunable

Year:  2020        PMID: 32052962     DOI: 10.1021/acsnano.9b09301

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  Electrically driven single microwire-based single-mode microlaser.

Authors:  Xiangbo Zhou; Mingming Jiang; Kai Xu; Maosheng Liu; Shulin Sha; Shuiyan Cao; Caixia Kan; Da Ning Shi
Journal:  Light Sci Appl       Date:  2022-06-29       Impact factor: 20.257

  1 in total

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