Disorder-tuned conductivity in amorphous monolayer carbon

Huifeng Tian, Yinhang Ma, Zhenjiang Li, Mouyang Cheng, Shoucong Ning, Erxun Han, Mingquan Xu, Peng Fei Zhang, Kexiang Zhao, Ruijie Li, Yuting Zou, Pei Chi Liao, Shulei Yu, Xiaomei Li, Jianlin Wang, Shizhuo Liu, Yifei Li, Xinyu Huang, Zhixin Yao, Dongdong DingJunjie Guo, Yuan Huang, Jianming Lu, Yuyan Han, Zhaosheng Wang, Zhi Gang Cheng, Junjiang Liu, Zhi Xu, Kaihui Liu, Peng Gao, Ying Jiang, Li Lin, Xiaoxu Zhao, Lifen Wang, Xuedong Bai, Wangyang Fu, Jie Yu Wang, Maozhi Li, Ting Lei, Yanfeng Zhang, Yanglong Hou, Jian Pei, Stephen J. Pennycook, Enge Wang, Ji Chen*, Wu Zhou*, Lei Liu*

*此作品的通讯作者

科研成果: 期刊稿件文章同行评审

86 引用 (Scopus)
Plum Print visual indicator of research metrics
  • Citations
    • Citation Indexes: 85
  • Captures
    • Readers: 94
  • Mentions
    • News Mentions: 3
see details

摘要

Correlating atomic configurations—specifically, degree of disorder (DOD)—of an amorphous solid with properties is a long-standing riddle in materials science and condensed matter physics, owing to difficulties in determining precise atomic positions in 3D structures1–5. To this end, 2D systems provide insight to the puzzle by allowing straightforward imaging of all atoms6,7. Direct imaging of amorphous monolayer carbon (AMC) grown by laser-assisted depositions has resolved atomic configurations, supporting the modern crystallite view of vitreous solids over random network theory8. Nevertheless, a causal link between atomic-scale structures and macroscopic properties remains elusive. Here we report facile tuning of DOD and electrical conductivity in AMC films by varying growth temperatures. Specifically, the pyrolysis threshold temperature is the key to growing variable-range-hopping conductive AMC with medium-range order (MRO), whereas increasing the temperature by 25 °C results in AMC losing MRO and becoming electrically insulating, with an increase in sheet resistance of 109 times. Beyond visualizing highly distorted nanocrystallites embedded in a continuous random network, atomic-resolution electron microscopy shows the absence/presence of MRO and temperature-dependent densities of nanocrystallites, two order parameters proposed to fully describe DOD. Numerical calculations establish the conductivity diagram as a function of these two parameters, directly linking microstructures to electrical properties. Our work represents an important step towards understanding the structure–property relationship of amorphous materials at the fundamental level and paves the way to electronic devices using 2D amorphous materials.

源语言英语
页(从-至)56-61
页数6
期刊Nature
615
7950
DOI
出版状态已出版 - 2 3月 2023

指纹

探究 'Disorder-tuned conductivity in amorphous monolayer carbon' 的科研主题。它们共同构成独一无二的指纹。

引用此

Tian, H., Ma, Y., Li, Z., Cheng, M., Ning, S., Han, E., Xu, M., Zhang, P. F., Zhao, K., Li, R., Zou, Y., Liao, P. C., Yu, S., Li, X., Wang, J., Liu, S., Li, Y., Huang, X., Yao, Z., ... Liu, L. (2023). Disorder-tuned conductivity in amorphous monolayer carbon. Nature, 615(7950), 56-61. https://doi.org/10.1038/s41586-022-05617-w