Colloidal quantum dot lasers

被引:0
|
作者
Young-Shin Park
Jeongkyun Roh
Benjamin T. Diroll
Richard D. Schaller
Victor I. Klimov
机构
[1] Los Alamos National Laboratory,Chemistry Division
[2] University of New Mexico,Centre for High Technology Materials
[3] Pusan National University,Department of Electrical Engineering
[4] Argonne National Laboratory,Centre for Nanoscale Materials
[5] Northwestern University,Department of Chemistry
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Semiconductor nanocrystals represent a promising class of solution-processable optical-gain media that can be manipulated via inexpensive, easily scalable colloidal techniques. Due to their extremely small sizes (typically <10 nm), their properties can be directly controlled via effects of quantum confinement; therefore, they are often termed colloidal quantum dots (CQDs). In addition to size-tunable emission wavelengths, CQDs offer other benefits for lasing applications, including low optical-gain thresholds and high temperature stability of lasing characteristics. Recent progress in understanding and practical control of processes impeding light amplification in CQDs has resulted in several breakthroughs, including the demonstration of optically pumped continuous-wave lasing, the realization of optical gain with direct current electrical injection and the development of dual-function electroluminescent devices that also operate as optically pumped lasers. The purpose of this Review is to assess the status of the field of CQD lasing and discuss the existing challenges and opportunities. A particular focus is on approaches for suppressing nonradiative Auger recombination, novel optical-gain concepts enabled by strong exciton–exciton interactions and controlled CQD charging, effects of nanocrystal form factors on light amplification and practical architectures for realizing electrically pumped CQD lasers. This overview suggests that the accumulated knowledge, along with the approaches developed for manipulating the optical-gain properties of colloidal nanostructures, perfectly position the CQD field for successfully addressing a long-standing challenge: the realization of CQD-based laser diodes.
引用
收藏
页码:382 / 401
页数:19
相关论文
共 50 条
  • [31] Extended Short-Wave Infrared Colloidal Quantum Dot Lasers with Nanosecond Excitation
    Whitworth, Guy L.
    Roda, Carmelita
    Dalmases, Mariona
    Taghipour, Nima
    Dosil, Miguel
    Nikolaidou, Katerina
    Dehghanpour, Hamed
    Konstantatos, Gerasimos
    ADVANCED MATERIALS, 2025, 37 (04)
  • [32] Colloidal quantum dot electronics
    Liu, Mengxia
    Yazdani, Nuri
    Yarema, Maksym
    Jansen, Maximilian
    Wood, Vanessa
    Sargent, Edward H.
    NATURE ELECTRONICS, 2021, 4 (08) : 548 - 558
  • [33] Colloidal quantum dot electronics
    Mengxia Liu
    Nuri Yazdani
    Maksym Yarema
    Maximilian Jansen
    Vanessa Wood
    Edward H. Sargent
    Nature Electronics, 2021, 4 : 548 - 558
  • [34] Quantum Efficiency of Quantum Dot Lasers
    Blood, Peter
    IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 2017, 23 (06)
  • [35] InAsP quantum dot lasers
    Karomi, I.
    Shutts, S.
    Smowton, P. M.
    Krysa, A. B.
    Beanland, R.
    2015 PHOTONICS CONFERENCE (IPC), 2015,
  • [36] Quantum dot lasers and amplifiers
    Pohl, UW
    Bimberg, D
    PROGRESS IN COMPOUND SEMICONDUCTOR MATERIALS III - ELECTRONIC AND OPTOELECTRONIC APPLICATIONS, 2004, 799 : 359 - 367
  • [37] Quantum Dot Lasers on Silicon
    Liu, Alan Y.
    Zhang, Chong
    Gossard, Arthur C.
    Bowers, John E.
    2014 IEEE 11TH INTERNATIONAL CONFERENCE ON GROUP IV PHOTONICS (GFP), 2014,
  • [38] Perovskite quantum dot lasers
    Chen, Jie
    Du, Wenna
    Shi, Jianwei
    Li, Meili
    Wang, Yue
    Zhang, Qing
    Liu, Xinfeng
    INFOMAT, 2020, 2 (01) : 170 - 183
  • [39] Quantum-dot lasers
    Eberl, K
    PHYSICS WORLD, 1997, 10 (09) : 47 - 50
  • [40] Quantum-dot lasers
    Schweizer, H
    Jetter, M
    Scholz, F
    SINGLE QUANTUM DOTS: FUNDAMENTALS, APPLICATIONS AND NEW CONCEPTS, 2003, 90 : 185 - 235