Light Emitting Devices Based on Quantum Well-Dots

We review epitaxial formation, basic properties, and device applications of a novel type of nanostructures of mixed (0D/2D) dimensionality that we refer to as quantum well-dots (QWDs). QWDs are formed by metalorganic vapor phase epitaxial deposition of 4&#8722;16 monolayers of In<sub>x<...

Full description

Bibliographic Details
Main Authors: Mikhail V. Maximov, Alexey M. Nadtochiy, Sergey A. Mintairov, Nikolay A. Kalyuzhnyy, Natalia V. Kryzhanovskaya, Eduard I. Moiseev, Nikita Yu. Gordeev, Yuriy M. Shernyakov, Alexey S. Payusov, Fedor I. Zubov, Vladimir N. Nevedomskiy, Sergei S. Rouvimov, Alexey E. Zhukov
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/10/3/1038
Description
Summary:We review epitaxial formation, basic properties, and device applications of a novel type of nanostructures of mixed (0D/2D) dimensionality that we refer to as quantum well-dots (QWDs). QWDs are formed by metalorganic vapor phase epitaxial deposition of 4&#8722;16 monolayers of In<sub>x</sub>Ga<sub>1&#8722;x</sub>As of moderate indium composition (0.3 &lt; <i>x</i> &lt; 0.5) on GaAs substrates and represent dense arrays of carrier localizing indium-rich regions inside In-depleted residual quantum wells. QWDs are intermediate in properties between 2D quantum wells and 0D quantum dots and show some advantages of both of those. In particular, they offer high optical gain/absorption coefficients as well as reduced carrier diffusion in the plane of the active region. Edge-emitting QWD lasers demonstrate low internal loss of 0.7 cm<sup>&#8722;1</sup> and high internal quantum efficiency of 87%. as well as a reasonably high level of continuous wave (CW) power at room temperature. Due to the high optical gain and suppressed non-radiative recombination at processed sidewalls, QWDs are especially advantageous for microlasers. Thirty-one &#956;m in diameter microdisk lasers show a high record for this type of devices output power of 18 mW. The CW lasing is observed up to 110 &#176;C. A maximum 3-dB modulation bandwidth of 6.7 GHz is measured in the 23 &#956;m in diameter microdisks operating uncooled without a heatsink. The open eye diagram is observed up to 12.5 Gbit/s, and error-free 10 Gbit/s data transmission at 30 &#176;C without using an external optical amplifier, and temperature stabilization is demonstrated.
ISSN:2076-3417