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Published on: July 24, 2015
Efficient Charge Transfer in Graphene/CrOCl Heterostructures by van der Waals Interfacial Coupling
Binyu Ying1, Baojuan Xin2, Miaomiao Li1
1College of Advanced Interdisciplinary Studies & Hunan Provincial Key Laboratory of Novel Nano-Optoelectronic Information Materials and Devices, National University of Defense Technology, Changsha, Hunan 410073, China.
Interfacial charge coupling in graphene/CrOCl heterostructures efficiently dopes graphene with holes. This charge transfer, confirmed by Raman spectroscopy and transport measurements, explains exotic quantum states in these van der Waals heterostructures.
Area of Science:
- Materials Science
- Condensed Matter Physics
- Nanotechnology
Background:
- Two-dimensional (2D) materials offer abundant surface atoms and electrons for interfacial engineering.
- Van der Waals (vdW) heterostructures enable tuning of electronic properties through interfacial charge coupling.
- Graphene/CrOCl heterostructures exhibit intriguing quantum states, but interlayer coupling mechanisms are not fully understood.
Purpose of the Study:
- To provide clear evidence of efficient hole doping in graphene/CrOCl heterostructures.
- To quantify the charge transfer between graphene and CrOCl.
- To elucidate the mechanism behind the observed hole doping.
Main Methods:
- Raman spectroscopy to analyze graphene's electronic structure.
- Electrical transport measurements to assess conductivity changes.
- First-principles calculations (density functional theory) to model charge transfer.
Main Results:
- Significant blue shifts and stiffening of graphene Raman modes indicate efficient hole injection.
- Quantified hole concentration in graphene at approximately 1.2 × 1013 cm-2.
- Observed increase in graphene conductivity consistent with hole doping.
- Calculations confirm electron transfer from graphene to CrOCl due to work function difference and Cl electronegativity.
Conclusions:
- Efficient hole doping of graphene by CrOCl is demonstrated in vdW heterostructures.
- Interfacial charge coupling is a key factor in the electronic properties of graphene/CrOCl.
- Findings contribute to understanding exotic quantum phenomena and engineering 2D heterostructures.
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