Modeling high-order harmonic generation in quantum dots using a real-space tight-binding approach

M Martin Thümmler (Institute of Physical Chemistry, Friedrich Schiller University 1 , Jena,) A Alexander Croy (Institute of Physical Chemistry, Friedrich Schiller University 1 , Jena,) U Ulf Peschel (Institute of Condensed Matter Theory and Optics, Friedrich Schiller University 2 , Jena,) S Stefanie Gräfe

Abstract

Recently, the size-dependence of high-order harmonic generation (HHG) in quantum dots (QDs) has been investigated experimentally. In particular, for longer driving wavelengths and quantum dots smaller than 3 nm, HHG was strongly suppressed; however, there is no computational model capable of describing the strong-field response of such systems. In this work, we introduce a computationally efficient three-dimensional real-space tight-binding model specifically designed for the simulation of HHG in confined systems. The model parameters are meticulously derived from density functional theory calculations for the semiconductor bulk, followed by a process of Wannierization. Our findings demonstrate that the proposed model accurately captures the observed dependency of the HHG yield on the quantum dot size. In addition, we simulate the HHG yield for elliptically polarized pulses for different QD-sizes and driving wavelengths up to 5 μm. The proposed model fills the theoretical void in simulating HHG within medium-sized nanostructures, which cannot be described by methods applied for periodic solids, or small molecules or atoms.

Article Details

Volume / Issue Vol. 164, Issue 9
Published March 07, 2026
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (4)

M

Martin Thümmler

Institute of Physical Chemistry, Friedrich Schiller University 1 , Jena,

A

Alexander Croy

Institute of Physical Chemistry, Friedrich Schiller University 1 , Jena,

U

Ulf Peschel

Institute of Condensed Matter Theory and Optics, Friedrich Schiller University 2 , Jena,

S

Stefanie Gräfe