English

Approximate quantum cloaking and almost trapped states

Quantum Physics 2009-11-13 v2 Mathematical Physics math.MP Optics

Abstract

We describe families of potentials which act as approximate cloaks for matter waves, i.e., for solutions of the time-independent Schr\"odinger equation at energy EE, with applications to the design of ion traps. These are derived from perfect cloaks for the conductivity and Helmholtz equations, by a procedure we refer to as isotropic transformation optics. If WW is a potential which is surrounded by a sequence {VnE}n=1\{V_n^E\}_{n=1}^\infty of approximate cloaks, then for generic EE, asymptotically in nn (i) WW is both undetectable and unaltered by matter waves originating externally to the cloak; and (ii) the combined potential W+VnEW+V_n^E does not perturb waves outside the cloak. On the other hand, for EE near a discrete set of energies, cloaking {\it per se} fails and the approximate cloaks support wave functions concentrated, or {\it almost trapped}, inside the cloaked region and negligible outside. Applications include ion traps, almost invisible to matter waves or customizable to support almost trapped states of arbitrary multiplicity. Possible uses include simulation of abstract quantum systems, magnetically tunable quantum beam switches, and illusions of singular magnetic fields.

Keywords

Cite

@article{arxiv.0806.0368,
  title  = {Approximate quantum cloaking and almost trapped states},
  author = {A. Greenleaf and Y. Kurylev and M. Lassas and G. Uhlmann},
  journal= {arXiv preprint arXiv:0806.0368},
  year   = {2009}
}

Comments

Revised, with new figures. Single column format

R2 v1 2026-06-21T10:46:42.470Z