We shall revisit the conventional adiabatic or Markov approximation, which — contrary to the semiclassical case– does not preserve the positive-definite character of the corresponding density matrix, thus leading to highly non-physical results. To overcome this serious limitation, originally addressed by Davies and co-workers almost three decades ago, we shall propose an alternative more general adiabatic procedure, able to provide a reliable/robust treatment of energy-dissipation and dephasing processes in electronic quantum devices. Unlike standard master-equation formulations, our procedure guarantees a positive evolution for a variety of physical subsystem (including the common partial trace), and quantum scattering rates are well defined even for subsystems with internal structure/ continuous energy spectrum. We shall compare the proposed Markov dissipation model with the conventional one also through basic simulations of energy-relaxation versus decoherence channels in prototypical semiconductor nanodevices.
Microscopic theory of energy dissipation and decoeherence in open systems: a quantum Fermi's golden rule / Taj, D.; Iotti, Rita Claudia; Rossi, Fausto. - In: JOURNAL OF PHYSICS. CONFERENCE SERIES. - ISSN 1742-6588. - STAMPA. - 193:1(2009), pp. 012153-1-012135-6. [10.1088/1742-6596/193/1/012135]
Microscopic theory of energy dissipation and decoeherence in open systems: a quantum Fermi's golden rule
IOTTI, Rita Claudia;ROSSI, FAUSTO
2009
Abstract
We shall revisit the conventional adiabatic or Markov approximation, which — contrary to the semiclassical case– does not preserve the positive-definite character of the corresponding density matrix, thus leading to highly non-physical results. To overcome this serious limitation, originally addressed by Davies and co-workers almost three decades ago, we shall propose an alternative more general adiabatic procedure, able to provide a reliable/robust treatment of energy-dissipation and dephasing processes in electronic quantum devices. Unlike standard master-equation formulations, our procedure guarantees a positive evolution for a variety of physical subsystem (including the common partial trace), and quantum scattering rates are well defined even for subsystems with internal structure/ continuous energy spectrum. We shall compare the proposed Markov dissipation model with the conventional one also through basic simulations of energy-relaxation versus decoherence channels in prototypical semiconductor nanodevices.Pubblicazioni consigliate
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https://hdl.handle.net/11583/2290963
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