English

Non-unitary Quantum Electronics: Novel Functions from the Edge of the Quantum World

Mesoscale and Nanoscale Physics 2021-03-24 v1 Materials Science Statistical Mechanics Quantum Physics

Abstract

Novel categories of electronic devices and quantum materials are obtained by pipelining the unitary evolution of electron quantum states as described by Schroedinger's equation with non-unitary processes that interrupt the coherent propagation of electrons. These devices and materials reside in the fascinating transition regime between quantum mechanics and classical physics. The devices are designed such that a nonreciprocal unitary state evolution is achieved by means of a broken inversion symmetry, for example as induced at material interfaces. This coherent state evolution is interrupted by individual inelastic scattering events caused by defects coupled to an environment. Two-terminal non-unitary quantum devices, for example, feature nonreciprocal conductance in linear response. Thus, they are exemptions to Onsager's reciprocal relation, and they challenge the second law of thermodynamics. Implementing the device function into the unit cells of materials or meta-materials yields novel functionalities in 2D and 3D materials, at interfaces, and in heterostructures.

Keywords

Cite

@article{arxiv.2010.06257,
  title  = {Non-unitary Quantum Electronics: Novel Functions from the Edge of the Quantum World},
  author = {J. Mannhart and H. Boschker and P. Bredol},
  journal= {arXiv preprint arXiv:2010.06257},
  year   = {2021}
}

Comments

Summary of the lecture "Non-unitary Quantum Electronics---A New World beyond Onsager and Clausius" given on 18 July 2020 at the Les Houches Summer School on Emergent Electronic States Confined at Interfaces. Submission to SciPost