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Collective-effects-enhanced multiqubit information engines
Journal article   Peer reviewed

Collective-effects-enhanced multiqubit information engines

Noufal Jaseem, Victor Mukherjee and Noufal Jaseem Poovakkattil
Physical review. A, Vol.108(4), 042219
01/10/2023

Abstract

Optics Physical Sciences Physics Physics, Atomic, Molecular & Chemical Science & Technology
We study a quantum information engine (QIE) modeled by a multiqubit working medium (WM) collectively coupled to a single thermal bath. We show that one can harness the collective effects to significantly enhance the performance of the QIE, as compared to equivalent engines lacking collective effects. We use one bit of information about the WM magnetization to extract work from the thermal bath. We analyze the work output, noise-to-signal ratio, and thermodynamic uncertainty relation (TUR), and contrast these performance metrics of a collective QIE with that of an engine whoseWM qubits are coupled independently to a thermal bath. We show that in the limit of high temperatures of the thermal bath, a collective QIE always outperforms its independent counterpart. In contrast to quantum heat engines, where collective enhancement in specific heat plays a direct role in improving the performance of the engines, here the collective advantage stems from higher occupation probabilities for the higher-energy levels of the positive magnetization states, as compared to the independent case. Furthermore, we show that in the limit of high temperatures, the TUR for both the collective as well as the independent QIEs violate the standard heat engine TUR bound of 2.

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