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tyyyyyyppooooossss (thx Konstantin)
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@ -1359,7 +1359,7 @@ theorem can be formulated as
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-\dv{\qrelent{ρ_{\sys}(t)}{ρ_{\sys}(∞)}}{t} \geq 0,
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\end{equation}
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where \(\qrelent{ρ}{σ}=\tr[ρ \log_{2} ρ - ρ \log_{2} σ]\) is the
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quantum relative entropy. The left hand side of \cref{eq:spohn} is
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quantum relative entropy. The left-hand side of \cref{eq:spohn} is
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often called entropy production~\cite{Breuer2002Jun,Binder2018}.
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\begin{figure}[htp]
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\centering
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@ -73,7 +73,7 @@ change over one cycle.
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In \cref{sec:operational_thermo} a Gibbs like inequality for an
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arbitrary number of baths is derived as a slight generalization of the
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derivation in \refcite{Kato2016Dec}. The left hand side of this
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derivation in \refcite{Kato2016Dec}. The left-hand side of this
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inequality can be associated with a thermodynamic cost that should be
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minimized for optimal efficiency.
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@ -674,7 +674,7 @@ energy that is simply transferred between the baths.
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An argument based on entropy may be made for the periodic steady state
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as was shown in \refcite{Kato2016Dec} and is reproduced here with the
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slight generalization of multiple baths and modulated coupling. We
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will find a Clausius like form of the second law. The left hand side
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will find a Clausius-like form of the second law. The left-hand side
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of this inequality can then be interpreted as thermodynamic cost of
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the cyclical process.
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@ -778,7 +778,7 @@ In fact, the requirement that \(ΔE_{\bath^i}^\cyc\) be constant can be
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relaxed, as \cref{eq:secondlaw_cyclic} holds as soon as
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\(ΔS_\sys^\cyc\) vanishes.
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The left hand side could be called ``bath entropy production'' as is
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The left-hand side could be called ``bath entropy production'' as is
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motivated in \refcite{Riechers2021Apr}, where heat is identified with
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\(ΔE_{\bath^i}\). There, the entropy production bound
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\cref{eq:bathenergyandsystementro} that takes into account system and
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@ -1311,7 +1311,7 @@ the usefulness and validity of the considerations of
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per cycle and efficiency, as well as the cost measure introduced
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there.
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A standard thermodynamic cycle that is a popular model in the
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A standard thermodynamic cycle which is a popular model in the
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literature\footnote{see
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\cite{Wiedmann2021Jun,Karimi2016Nov,Binder2018}} is a quantum heat
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engine inspired by the Otto cycle. Similar to expansion and
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