The macroscopic quantum behavior of protons in the KHCO_3 crystal: Theory and experiments
Fran\c{c}ois Fillaux (LADIR), Alain Cousson (LLB), Matthias J. Gutmann, (RAL)

TL;DR
This paper presents a theoretical and experimental study demonstrating that protons in KHCO₃ crystals exhibit macroscopic quantum behavior, challenging classical interpretations and showing persistent quantum correlations across a range of temperatures.
Contribution
It introduces a decoherence-free quantum framework for protons in hydrogen-bonded crystals, supported by neutron scattering experiments and quantum fluctuation calculations.
Findings
Neutron scattering supports macroscopic quantum correlations.
Quantum fluctuations align with superposition state calculations.
No temperature-driven transition from quantum to classical behavior.
Abstract
For hydrogen bonded crystals exhibiting proton transfer along hydrogen bonds, namely , there is a dichotomy of interpretation consisting in that while the crystal lattice is a quantum object with discrete vibrational states, protons are represented by a statistical distribution of classical particles with definite positions and momenta at any time. We propose an alternative theoretical framework for decoherence-free macroscopic proton states. The translational invariance of the crystal, the adiabatic separation of proton dynamics from that of heavy atoms, the nonlocal nature of proton states, and quantum interferences, are opposed to statistical distributions and semiclassical dynamics. We review neutron scattering studies of the crystal of potassium hydrogen carbonate (KHCO) supporting the existence of…
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Taxonomy
TopicsSolid-state spectroscopy and crystallography · Quantum, superfluid, helium dynamics · Crystallography and molecular interactions
