English

The Role of Oxygen in Ionic Liquid Gating on 2D Cr2Ge2Te6: a Non-Oxide Material

Materials Science 2018-01-22 v1 Mesoscale and Nanoscale Physics

Abstract

Ionic liquid gating can markedly modulate the materials' carrier density so as to induce metallization, superconductivity, and quantum phase transitions. One of the main issues is whether the mechanism of ionic liquid gating is an electrostatic field effect or an electrochemical effect, especially for oxide materials. Recent observation of the suppression of the ionic liquid gate-induced metallization in the presence of oxygen for oxide materials suggests the electrochemical effect. However, in more general scenarios, the role of oxygen in ionic liquid gating effect is still unclear. Here, we perform the ionic liquid gating experiments on a non-oxide material: two-dimensional ferromagnetic Cr2Ge2Te6. Our results demonstrate that despite the large increase of the gate leakage current in the presence of oxygen, the oxygen does not affect the ionic liquid gating effect (< 5 % difference), which suggests the electrostatic field effect as the mechanism on non-oxide materials. Moreover, our results show that the ionic liquid gating is more effective on the modulation of the channel resistances compared to the back gating across the 300 nm thick SiO2.

Keywords

Cite

@article{arxiv.1712.08281,
  title  = {The Role of Oxygen in Ionic Liquid Gating on 2D Cr2Ge2Te6: a Non-Oxide Material},
  author = {Yangyang Chen and Wenyu Xing and Xirui Wang and Bowen Shen and Wei Yuan and Tang Su and Yang Ma and Yunyan Yao and Jiangnan Zhong and Yu Yun and X. C. Xie and Shuang Jia and Wei Han},
  journal= {arXiv preprint arXiv:1712.08281},
  year   = {2018}
}

Comments

17 pages, 6 figure. To appear in ACS Applied Materials & Interfaces