English

Giant Rydberg Excitons in Cuprous Oxide

Mesoscale and Nanoscale Physics 2014-11-13 v1 Materials Science Atomic Physics

Abstract

Highly excited atoms with an electron moved into a level with large principal quantum number are fascinating hydrogen-like objects. The giant extension of these Rydberg atoms leads to huge interaction effects. Monitoring these interactions has provided novel insights into molecular and condensed matter physics problems on a single quantum level. Excitons, the fundamental optical excitations in semiconductors consisting of a negatively charged electron and a positively charged hole, are the condensed matter analogues of hydrogen. Highly excited excitons with extensions similar to Rydberg atoms are attractive because they may be placed and moved in a crystal with high precision using microscopic potential landscapes. Their interaction may allow formation of ordered exciton phases or sensing of elementary excitations in the surrounding, also on a quantum level. Here we demonstrate the existence of Rydberg excitons in cuprous oxide, Cu2O, with principal quantum numbers as large as n=25 . These states have giant wave function extensions of more than 2 micrometers, compared to about a nanometer for the ground state. The strong dipole-dipole interaction is evidenced by a blockade effect, where the presence of an exciton prevents excitation of a further exciton in its vicinity.

Keywords

Cite

@article{arxiv.1407.0691,
  title  = {Giant Rydberg Excitons in Cuprous Oxide},
  author = {Tomasz Kazimierczuk and Dietmar Fröhlich and Stefan Scheel and Heinrich Stolz and Manfred Bayer},
  journal= {arXiv preprint arXiv:1407.0691},
  year   = {2014}
}
R2 v1 2026-06-22T04:53:47.406Z