paper

A neutron diffraction study of macroscopically entangled proton states in the high temperature phase of the KHCO3 crystal at 340 K

arXiv:0807.1386 · doi:10.1088/0953-8984/20/01/015225

Abstract

We utilize single-crystal neutron diffraction to study the structure of potassium hydrogen carbonate (KHCO) and macroscopic quantum entanglement above the phase transition at K. Whereas split atom sites could be due to disorder, the diffraction pattern at 340 K evidences macroscopic proton states identical to those previously observed below by F. Fillaux et al., (2006 \textit{J. Phys.: Condens. Matter} \textbf{18} 3229). We propose a theoretical framework for decoherence-free proton states and the calculated differential cross-section accords with observations. The structural transition occurs from one ordered structure () to another ordered structure. There is no breakdown of the quantum regime. It is suggested that the crystal is a macroscopic quantum object which can be represented by a state vector. Raman spectroscopy and quasi-elastic neutron scattering suggest that the state vector is a superposition of the state vectors for two -like structures symmetric with respect to planes.

References in corpus (1)

A neutron diffraction study of macroscopically entangled proton states in the high temperature phase of the KHCO3 crystal at 340 K · wovepaper