English

Temperature dependence of divacancy spin coherence in implanted silicon carbide

Quantum Physics 2021-09-22 v3

Abstract

Spin defects in silicon carbide (SiC) have attracted increasing interest due to their excellent optical and spin properties, which are useful in quantum information processing. In this paper, we systematically investigate the temperature dependence of the spin properties of divacancy defects in implanted 4\emph{H}-SiC. The zero-field splitting parameter DD, the inhomogeneous dephasing time T2T_2^{*}, the coherence time T2T_2, and the depolarization time T1T_1 are extensively explored in a temperature range from 5 to 300 K. Two samples implanted with different nitrogen molecule ion fluences (N2+\rm {N_2}^{+}, 1×1014/cm21\times 10^{14}/\rm cm^{2} and 1×1013/cm21\times 10^{13}/\rm cm^{2}) are investigated, whose spin properties are shown to have similar temperature-dependent behaviors. Still, the sample implanted with a lower ion fluence has longer T2T_{2} and T1T_{1}. We provide possible theoretical explanations for the observed temperature-dependent dynamics. Our work promotes the understanding of the temperature dependence of spin properties in solid-state systems, which can be helpful for constructing wide temperature-range thermometers based on the mature semiconductor material.

Keywords

Cite

@article{arxiv.2104.12089,
  title  = {Temperature dependence of divacancy spin coherence in implanted silicon carbide},
  author = {Wu-Xi Lin and Fei-Fei Yan and Qiang Li and Jun-feng Wang and Zhi-He Hao and Ji-Yang Zhou and Hao Li and Li-Xing You and Jin-Shi Xu and Chuan-Feng Li and Guang-Can Guo},
  journal= {arXiv preprint arXiv:2104.12089},
  year   = {2021}
}

Comments

7 pages, 5 figures, 46 references

R2 v1 2026-06-24T01:29:30.881Z