English

Third law of thermodynamics and the scaling of quantum computers

Quantum Physics 2022-10-04 v2

Abstract

The third law of thermodynamics, also known as the Nernst unattainability principle, puts a fundamental bound on how close a system, whether classical or quantum, can be cooled to a temperature near to absolute zero. On the other hand, a fundamental assumption of quantum computing is to start each computation from a register of qubits initialized in a pure state, i.e., at zero temperature. These conflicting aspects, at the interface between quantum computing and thermodynamics, are often overlooked or, at best, addressed only at a single-qubit level. In this work, we argue how the existence of a small, but finite, effective temperature, which makes the initial state a mixed state, poses a real challenge to the fidelity constraints required for the scaling of quantum computers. Our theoretical results, carried out for a generic quantum circuit with NN-qubit input states, are validated by test runs performed on a real quantum processor.

Keywords

Cite

@article{arxiv.2203.09545,
  title  = {Third law of thermodynamics and the scaling of quantum computers},
  author = {Lorenzo Buffoni and Stefano Gherardini and Emmanuel Zambrini Cruzeiro and Yasser Omar},
  journal= {arXiv preprint arXiv:2203.09545},
  year   = {2022}
}

Comments

9 pages, 5 figures