In this paper, we study the electron spin decoherence of single defects in silicon carbide (SiC) nuclear spin bath. We find that, although the natural abundance of 29Si (pSi=4.7%) is about 4 times larger than that of 13C (pC=1.1%), the electron spin coherence time of defect centers in SiC nuclear spin bath in strong magnetic field (B>300Gauss) is longer than that of nitrogen-vacancy (NV) centers in 13C nuclear spin bath in diamond. The reason for this counter-intuitive result is the suppression of heteronuclear-spin flip-flop process in finite magnetic field. Our results show that electron spin of defect centers in SiC are excellent candidates for solid state spin qubit in quantum information processing.
@article{arxiv.1409.4646,
title = {Electron Spin Decoherence in Silicon Carbide Nuclear Spin Bath},
author = {Li-Ping Yang and Christian Burk and Mattias Widmann and Sang-Yun Lee and Jörg Wrachtrup and Nan Zhao},
journal= {arXiv preprint arXiv:1409.4646},
year = {2015}
}