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Experimental and theoretical demonstration of quantum degeneracy enhancement in a thermodynamic engine

ORAL

Abstract

Thermodynamic engines underpin much of modern technology. Relatively unexplored until recently is the question of whether a quantum mechanical thermodynamic engine can have inherent advantages in efficiency and power over its classical counterpart. As a first step towards answering this question, we experimentally and theoretically characterize an isentropic thermodynamic engine using an interacting quantum-degenerate gas of bosonic $^7$Li as the working fluid. In loose analogy to an Otto cycle, strokes of harmonic trap compression and relaxation are interleaved with strokes of strengthening and weakening contact interactions via a magnetic Feshbach resonance. By subjecting a thermal gas to the same cycle, we observe a quantitative and significant enhancement in both the efficiency and power transfer using the quantum-degenerate working fluid, as well as quantitative agreement with approximation-free interacting simulations. By running this cycle in reverse, we show that the process is isentropic and fully reversible. We characterize the power transfer and cycle efficiencies as a function of trap and interaction compression and cycle time, and show that we achieve high-efficiency, high-power energy transfer between optical and magnetic fields, quantitatively demonstrating quantum degeneracy enhancement of a thermodynamic engine.

Presenters

  • Ethan Q Simmons

    University of California, Santa Barbara

Authors

  • Ethan Q Simmons

    University of California, Santa Barbara

  • Kimberlee Keithley

    University of California, Santa Barbara

  • Roshan Sajjad

    University of California, Santa Barbara

  • Hector Mas

    University of California, Santa Barbara

  • Jeremy Tanlimco

    University of California, Santa Barbara

  • Eber Nolasco-Martinez

    University of California, Santa Barbara

  • Kris T Delaney

    University of California, Santa Barbara

  • Glenn H Fredrickson

    University of California, Santa Barbara

  • David M Weld

    UC Santa Barbara, University of California, Santa Barbara