English

Long-time behavior of many-particle quantum decay

Quantum Physics 2012-03-26 v3 Quantum Gases Mathematical Physics math.MP

Abstract

While exponential decay is ubiquitous in Nature, deviations at both short and long times are dictated by quantum mechanics. Non-exponential decay is known to arise due to the possibility of reconstructing the initial state from the decaying products. We discuss the quantum decay dynamics by tunneling of a many-particle system, characterizing the long-time non-exponential behavior of the non-escape and survival probabilities. The effects of contact interactions and quantum statistics are described. It is found that whereas for non-interacting bosons the long-time decay follows a power-law with an exponent linear in the number of particles N\N, the exponent becomes quadratic in N\N in the fermionic case. The same results apply to strongly interacting many-body systems related by the generalized Bose-Fermi duality. The faster fermionic decay can be traced back to the effective hard-core interactions between particles, which are as well the decaying products, and exhibit spatial anti-bunching which hinders the reconstruction of the initial unstable state. The results are illustrated with a paradigmatic model of quantum decay from a trap allowing leaks by tunneling, whose dynamics is described exactly by means of an expansion in resonant states.

Keywords

Cite

@article{arxiv.1104.4318,
  title  = {Long-time behavior of many-particle quantum decay},
  author = {A. del Campo},
  journal= {arXiv preprint arXiv:1104.4318},
  year   = {2012}
}

Comments

6 pages, added references and discussion

R2 v1 2026-06-21T17:57:29.189Z