Quantum Simulation of Collective Proton Tunneling in Hexagonal Ice Crystals
Abstract
The effect of proton tunneling on many-body correlated proton transfer in hexagonal ice is investigated by quantum simulation. Classical single-particle hopping along individual hydrogen bonds leads to charge defects at high temperature, whereas six protons in ringlike topologies can move concertedly as a delocalized quasiparticle via collective tunneling at low temperature, thus preventing the creation of high-energy topological defects. Our findings rationalize many-body quantum tunneling in hydrogen-bonded networks and suggest that this phenomenon might be more widespread than previously thought.
- Publication:
-
Physical Review Letters
- Pub Date:
- April 2014
- DOI:
- 10.1103/PhysRevLett.112.148302
- Bibcode:
- 2014PhRvL.112n8302D
- Keywords:
-
- 82.20.Xr;
- 66.35.+a;
- 67.80.-s;
- 71.15.Pd;
- Quantum effects in rate constants;
- Quantum tunneling of defects;
- Solid helium and related quantum crystals;
- Molecular dynamics calculations and other numerical simulations