English

A Clock Transition in the Cr$_7$Mn Molecular Nanomagnet

Mesoscale and Nanoscale Physics 2020-10-07 v1

Abstract

A viable qubit must have a long coherence time T2T_2. In molecular nanomagnets T2T_2 is often limited at low temperatures by the presence of dipole and hyperfine interactions, which are often mitigated through sample dilution, chemical engineering and isotope substitution in synthesis. Atomic-clock transitions offer another route to reducing decoherence from environmental fields by reducing the effective susceptibility of the working transition to field fluctuations. The Cr7_7Mn molecular nanomagnet, a heterometallic ring, features a clock transition at zero field. Both continuous-wave and spin-echo electron-spin resonance experiments on Cr7_7Mn samples diluted via co-crystallization, show evidence of the effects of the clock transition with a maximum T2350T_2\sim350 ns at 1.8 K. We discuss improvements to the experiment that may increase T2T_2 further.

Keywords

Cite

@article{arxiv.1812.04449,
  title  = {A Clock Transition in the Cr$_7$Mn Molecular Nanomagnet},
  author = {Charles A. Collett and Kai-Isaak Ellers and Nicholas Russo and Kevin R. Kittilstved and Grigore A. Timco and Richard E. P. Winpenny and Jonathan R. Friedman},
  journal= {arXiv preprint arXiv:1812.04449},
  year   = {2020}
}

Comments

4 pages, 4 figures, submitted to Magnetochemistry