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Ultrafast nonlinear absorption of Haldane model quantum dots.

Krishna Rana Magar1, Vadym Apalkov1

  • 1Department of Physics and Astronomy, Georgia State University, Atlanta, GA 30303, United States of America.

Journal of Physics. Condensed Matter : an Institute of Physics Journal
|July 16, 2025
PubMed
Summary

We theoretically investigated nonlinear absorbance in Haldane model quantum dots (QDs) subjected to strong optical pulses. Absorbance varies with pulse frequency and phase, influencing electron dynamics from reversible to irreversible.

Keywords:
graphenenonlinear opticsquantum dotsstrong optical pulsetopological systems

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Area of Science:

  • Quantum physics
  • Condensed matter theory
  • Nanophotonics

Background:

  • Haldane model quantum dots exhibit unique electronic properties.
  • Nonlinear optical phenomena in quantum dots are crucial for advanced optoelectronics.
  • Understanding electron dynamics under intense light is key to controlling quantum systems.

Purpose of the Study:

  • To theoretically analyze the nonlinear absorbance of Haldane model quantum dots.
  • To investigate the influence of optical pulse characteristics (frequency, amplitude, phase) on absorbance.
  • To explore the transition of nonlinear electron dynamics in quantum dots.

Main Methods:

  • Theoretical modeling of Haldane model quantum dots.
  • Analysis of nonlinear optical response to ultrashort and strong optical pulses.
  • Examination of absorbance dependence on pulse frequency, amplitude, and internal phase.

Main Results:

  • Nonlinear absorbance is highly dependent on optical pulse frequency relative to the quantum dot bandgap.
  • At low frequencies, absorbance shows strong amplitude dependence and phase-dependent maxima.
  • Near the bandgap, absorbance is weakly amplitude-dependent with a phase maximum at 90°, correlating with the minimum bandgap.

Conclusions:

  • The internal phase of the Haldane model significantly modulates nonlinear absorbance.
  • Pulse frequency dictates the nature of electron dynamics, shifting from reversible to irreversible.
  • These findings offer insights into controlling light-matter interactions in quantum dot systems.