Single-crystal two-dimensional material epitaxy on tailored non-single-crystal substrates

  • Xin Li
  • , Guilin Wu
  • , Leining Zhang
  • , Deping Huang
  • , Yunqing Li
  • , Ruiqi Zhang
  • , Meng Li
  • , Lin Zhu
  • , Jing Guo
  • , Tianlin Huang
  • , Jun Shen
  • , Xingzhan Wei
  • , Ka Man Yu
  • , Jichen Dong
  • , Michael S. Altman
  • , Rodney S. Ruoff
  • , Yinwu Duan
  • , Jie Yu
  • , Zhujun Wang
  • , Xiaoxu Huang*
  • Feng Ding*, Haofei Shi*, Wenxin Tang
*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

The use of single-crystal substrates as templates for the epitaxial growth of single-crystal overlayers has been a primary principle of materials epitaxy for more than 70 years. Here we report our finding that, though counterintuitive, single-crystal 2D materials can be epitaxially grown on twinned crystals. By establishing a geometric principle to describe 2D materials alignment on high-index surfaces, we show that 2D material islands grown on the two sides of a twin boundary can be well aligned. To validate this prediction, wafer-scale Cu foils with abundant twin boundaries were synthesized, and on the surfaces of these polycrystalline Cu foils, we have successfully grown wafer-scale single-crystal graphene and hexagonal boron nitride films. In addition, to greatly increasing the availability of large area high-quality 2D single crystals, our discovery also extends the fundamental understanding of materials epitaxy.

Original languageEnglish
Article number1773
JournalNature Communications
Volume13
Issue number1
DOIs
Publication statusPublished - Dec 2022
Externally publishedYes

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