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Gain recovery dynamics in active type-II semiconductor heterostructures

delete2023-02-21
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OA
AI
S
Schaefer, F.
M
Markus Stein
J
Janine Lorenz
F
Florian Dobener
C
C. Y. Ngo
J
J. T. Steiner
C
Christian Fuchs
W
W. Stolz
K
Kerstin Volz
T
T. Meier
J
J. Hader
J
Jerome V. Moloney
S
S. W. Koch
S
Sangam Chatterjee *
DOI:10.1063/5.0128777delete
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Abstract

Abstract

En 中文
Type-II heterostructures as active layers for semiconductor laser devices combine the advantages of a spectrally broad, temperature stable, and efficient gain with the potential for electrical injection pumping. Their intrinsic charge carrier relaxation dynamics limit the maximum achievable repetition rates beyond any constraints of cavity design or heat dissipation. Of particular interest are the initial build up of gain after high-energy injection and the gain recovery dynamics following depletion through a stimulated emission process. The latter simulates the operation condition of a pulsed laser or semiconductor optical amplifier. An optical pump pulse injects hot charge carriers that eventually build up broad spectral gain in a model (Ga,In)As/GaAs/Ga(As,Sb) heterostructure. The surplus energies of the optical pump mimic the electron energies typical for electrical injection. Subsequently, a second laser pulse tuned to the broad spectral gain region depletes the population inversion through stimulated emission. The spectrally resolved nonlinear transmission dynamics reveal gain recovery times as fast as 5 ps. These data define the intrinsic limit for the highest laser repetition rate possible with this material system in the range of 100 GHz. The experimental results are analyzed using a microscopic many-body theory identifying the origins of the broad gain spectrum.
Keywords:
QUANTUM-DOT
LASER
GHZ

Journal

Applied Physics Letters cover
Applied Physics Letters
IF:
3.6
Papers:
10.4W
Citations:
17.8W

Organization

P
Philipps University Marburg
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1.3W
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U
University of Arizona
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U
University of Paderborn
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2.9K
Papers: 2.7K
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J
justus liebig university giessen
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1.5W
Papers: 1.2W
Citations: 95
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