Scalable High-Mobility Graphene/hBN Heterostructures
arXiv:2309.14721 · doi:10.1021/acsami.3c06120
Abstract
Graphene-hexagonal boron nitride (hBN) scalable heterostructures are pivotal for the development of graphene-based high-tech applications. In this work, we demonstrate the realization of high-quality graphene-hBN heterostructures entirely obtained with scalable approaches. hBN continuous films were grown via ion beam-assisted physical vapor deposition directly on commercially available and used as receiving substrates for graphene single-crystal matrixes grown by chemical vapor deposition on copper. The structural, chemical, and electronic properties of the heterostructure were investigated by atomic force microscopy, Raman spectroscopy, and electrical transport measurements. We demonstrate graphene carrier mobilities exceeding in ambient conditions, 30% higher than those directly measured on . We prove the scalability of our approach by measuring more than 100 transfer length method devices over a centimeter scale, which present an average carrier mobility of . The reported high-quality all-scalable heterostructures are of relevance for the development of graphene-based high-performing electronic and optoelectronic applications.
References in corpus (8)
- The Raman Fingerprint of Graphene
- Boron nitride substrates for high-quality graphene electronics
- Uniaxial Strain in Graphene by Raman Spectroscopy: G peak splitting, Gruneisen Parameters and Sample Orientation
- Graphene-Based Integrated Photonics For Next-Generation Datacom And Telecom
- Integrating Graphene into Semiconductor Fabrication Lines
- Rapid CVD growth of millimetre-sized single crystal graphene using a cold-wall reactor
- Wafer-scale integration of graphene-based photonic devices
- High-quality electrical transport using scalable CVD graphene