Effective temperature pulses in open quantum systems
Pedro Portugal, Fredrik Brange, Christian Flindt

TL;DR
This paper proposes a quantum mechanical method to control and generate time-dependent temperature pulses in open quantum systems by modulating oscillator frequencies, enabling cooling below environmental temperature.
Contribution
It introduces a novel scheme using a few quantum harmonic oscillators to realize effective temperature control in open quantum systems, advancing quantum thermodynamics.
Findings
Effective temperature pulses can be realized by modulating oscillator frequencies.
The scheme allows cooling the quantum system below the environment temperature.
Control is achieved with only a few oscillators.
Abstract
Controlling the temperature of nano-scale quantum systems is becoming increasingly important in the efforts to develop thermal devices such as quantum heat valves, heat engines, and refrigerators, and to explore fundamental concepts in quantum thermodynamics. In practice, however, it is challenging to generate arbitrary time-dependent temperatures, similarly to what has been achieved for electronic voltage pulses. To overcome this problem, we here propose a fully quantum mechanical scheme to control the time-dependent environment temperature of an open quantum system. To this end, we consider a collection of quantum harmonic oscillators that mediate the interactions between the quantum system and a thermal reservoir, and we show how an effective time-dependent temperature can be realized by modulating the oscillator frequencies in time. By doing so, we can apply effective temperature…
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Taxonomy
TopicsAdvanced Thermodynamics and Statistical Mechanics · Mechanical and Optical Resonators · Spectroscopy and Quantum Chemical Studies
