English

Polarization freezing of 10000 optically-cooled nuclear spins by coupling to a single electron

Mesoscale and Nanoscale Physics 2015-05-13 v1 Other Condensed Matter

Abstract

The nature of the nano-scale environment presents a major challenge for solid-state implementation of spin-based qubits. In this work, a single electron spin in an optically pumped nanometer-sized III-V semiconductor quantum dot is used to control a macroscopic nuclear spin of several thousand nuclei, freezing its decay and leading to spin life-times exceeding 100 seconds at low temperatures. Few-millisecond-fast optical initialization of the nuclear spin is followed by a slow decay exhibiting random telegraph signals at long delay times, arising from low probability electron jumps out of the dot. The remarkably long spin life-time in a dot surrounded by a densely-packed nuclear spin environment arises from the Knight field created by the resident electron, which leads to suppression of nuclear spin depolarization.

Keywords

Cite

@article{arxiv.0901.4249,
  title  = {Polarization freezing of 10000 optically-cooled nuclear spins by coupling to a single electron},
  author = {E. A. Chekhovich and M. N. Makhonin and J. Skiba-Szymanska and A. B. Krysa and V. D. Kulakovskii and V. I. Fal'ko and M. S. Skolnick and A. I. Tartakovskii},
  journal= {arXiv preprint arXiv:0901.4249},
  year   = {2015}
}

Comments

13 pages, 3 figures, submitted to Nature Materials