Modeling the electroluminescence of atomic wires from quantum dynamics simulations

Author:

Bustamante Carlos M.1ORCID,Todorov Tchavdar2ORCID,Gadea Esteban D.3ORCID,Tarasi Facundo3ORCID,Stella Lorenzo4ORCID,Horsfield Andrew5ORCID,Scherlis Damián A.3ORCID

Affiliation:

1. Max Planck Institute for the Structure and Dynamics of Matter 1 , Hamburg 22761, Germany

2. Centre for Quantum Materials and Technologies, School of Mathematics and Physics, Queen’s University Belfast 2 , Belfast BT7 1NN, United Kingdom

3. Departamento de Química Inorgánica, Analítica y Química Física/INQUIMAE, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires 3 , Buenos Aires, Argentina

4. Centre for Light-Matter Interactions, School of Mathematics and Physics, Queen’s University Belfast 4 , Belfast BT7 1NN, United Kingdom

5. Department of Materials, Thomas Young Centre, Imperial College London, South Kensington Campus 5 , London SW7 2AZ, United Kingdom

Abstract

Static and time-dependent quantum-mechanical approaches have been employed in the literature to characterize the physics of light-emitting molecules and nanostructures. However, the electromagnetic emission induced by an input current has remained beyond the realm of molecular simulations. This is the challenge addressed here with the help of an equation of motion for the density matrix coupled to a photon bath based on a Redfield formulation. This equation is evolved within the framework of the driven-Liouville von Neumann approach, which incorporates open boundaries by introducing an applied bias and a circulating current. The dissipated electromagnetic power can be computed in this context from the time derivative of the energy. This scheme is applied in combination with a self-consistent tight-binding Hamiltonian to investigate the effects of bias and molecular size on the electroluminescence of metallic and semiconducting chains. For the latter, a complex interplay between bias and molecular length is observed: there is an optimal number of atoms that maximizes the emitted power at high voltages but not at low ones. This unanticipated behavior can be understood in terms of the band bending produced along the semiconducting chain, a phenomenon that is captured by the self-consistency of the method. A simple analytical model is proposed that explains the main features revealed by the simulations. The methodology, applied here at a self-consistent tight-binding level but extendable to more sophisticated Hamiltonians such as density functional tight binding and time dependent density functional theory, promises to be helpful for quantifying the power and quantum efficiency of nanoscale electroluminescent devices.

Funder

Horizon 2020 Framework Program

Agencia Nacional de Promoción Científica y Tecnológica

Thomas Young Center

Publisher

AIP Publishing

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