Quantum Tunneling in Breather Nano-colliders
V.I. Dubinko

TL;DR
This paper proposes that discrete breathers in crystals can enhance quantum tunneling, potentially triggering low energy nuclear reactions in solids by modulating potential wells and increasing tunneling probabilities.
Contribution
It introduces the concept of breather nano-colliders as a natural and efficient method to induce correlation effects that significantly boost quantum tunneling and LENR rates in solids.
Findings
Tunneling probability for D-D fusion increases with oscillation number in DBs.
Discussions on engineering nuclear active environments using breather nano-colliders.
Potential explanation for LENR observed at low deuterium concentrations.
Abstract
In many crystals with sufficient anharmonicity, a special kind of lattice vibrations, namely, discrete breathers (DBs) can be excited either thermally or by external triggering, in which the amplitude of atomic oscillations greatly exceeds that of harmonic oscillations (phonons). Coherency and persistence of large atomic oscillations in DBs may have drastic effect on quantum tunneling due to correlation effects discovered by Schrodinger and Robertson in 1930. These effects have been applied recently to the tunneling problem by Vysotskii et al, who demonstrated a giant increase of sub-barrier transparency during the increase of correlation coefficient at special high-frequency periodic action on quantum system. In the present paper, it is argued that DBs present the most natural and efficient way to produce correlation effects due to time-periodic modulation of the potential well width…
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Taxonomy
TopicsNonlinear Dynamics and Pattern Formation · Terahertz technology and applications · Laser-Matter Interactions and Applications
