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Harnessing Fluctuations in Thermodynamic Computing via Time-Reversal Symmetries

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arxiv 1906.11973 v1 pith:D3MLTX7R submitted 2019-06-27 cond-mat.stat-mech cs.ITmath.DSmath.ITnlin.CD

Harnessing Fluctuations in Thermodynamic Computing via Time-Reversal Symmetries

classification cond-mat.stat-mech cs.ITmath.DSmath.ITnlin.CD
keywords computingdistributionsworkcomponentduringexperimentallyfluctuationfunctional
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We experimentally demonstrate that highly structured distributions of work emerge during even the simple task of erasing a single bit. These are signatures of a refined suite of time-reversal symmetries in distinct functional classes of microscopic trajectories. As a consequence, we introduce a broad family of conditional fluctuation theorems that the component work distributions must satisfy. Since they identify entropy production, the component work distributions encode both the frequency of various mechanisms of success and failure during computing, as well giving improved estimates of the total irreversibly-dissipated heat. This new diagnostic tool provides strong evidence that thermodynamic computing at the nanoscale can be constructively harnessed. We experimentally verify this functional decomposition and the new class of fluctuation theorems by measuring transitions between flux states in a superconducting circuit.

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