English

Direct Entropy Measurement in a Mesoscopic Quantum System

Mesoscale and Nanoscale Physics 2019-05-30 v1

Abstract

The entropy of an electronic system offers important insights into the nature of its quantum mechanical ground state. This is particularly valuable in cases where the state is difficult to identify by conventional experimental probes, such as conductance. Traditionally, entropy measurements are based on bulk properties, such as heat capacity, that are easily observed in macroscopic samples but are unmeasurably small in systems that consist of only a few particles. In this work, we develop a mesoscopic circuit to directly measure the entropy of just a few electrons, and demonstrate its efficacy using the well understood spin statistics of the first, second, and third electron ground states in a GaAs quantum dot. The precision of this technique, quantifying the entropy of a single spin-12\frac{1}{2} to within 5\% of the expected value of kBln2k_B \ln{2}, shows its potential for probing more exotic systems. For example, entangled states or those with non-Abelian statistics could be clearly distinguished by their low-temperature entropy.

Keywords

Cite

@article{arxiv.1905.12388,
  title  = {Direct Entropy Measurement in a Mesoscopic Quantum System},
  author = {Nikolaus Hartman and Christian Olsen and Silvia Lüscher and Mohammad Samani and Saeed Fallahi and Geoffrey C. Gardner and Michael Manfra and Joshua Folk},
  journal= {arXiv preprint arXiv:1905.12388},
  year   = {2019}
}
R2 v1 2026-06-23T09:31:29.057Z