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Equation 10 · Part 2 · From Origins to Frontier: A History of Stochastic Thermodynamics and Complex Systems

Symbol e^-Δ F/k_B T

⟨e−W/kBT⟩=e−ΔF/kBT\left\langle e^{-W/k_B T} \right\rangle = e^{-\Delta F/k_B T}
e−ΔF/kBTe^{-\Delta F/k_B T}

What this part means

e−e^-Δ F/kBk_B T is one of the signed contributions combined to compute the quantity on the left.

Its job in the formula

e−e^-Δ F/kBk_B T is one of the signed contributions combined to compute the quantity on the left.

The passage around this formula

The next structural advance did not concern the demon at all; it concerned a much older and more general problem — how to extract equilibrium information from a process driven arbitrarily far from equilibrium. In 1997, Christopher Jarzynski published “Nonequilibrium Equality for Free Energy Differences” in Physical Review Letters [ 3 ] . The Jarzynski equality states that if a system is driven from one equilibrium state to another along some protocol, performing a fluctuating amount of work W on each repetition, the equilibrium free energy difference Δ\Delta F between the two states can be recovered exactly from an exponential average over the work distribution: ⟨e−W/kBT⟩=e−ΔF/kBT\left\langle e^{-W/k_B T} \right\rangle = e^{-\Delta F/k_B T}. This is a…

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Sources cited in the surrounding passage

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