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Physical and Electrical Characterization of Synthesized Millimeter Size Single Crystal Graphene, Using Controlled Bubbling Transfer. | LitMetric

AI Article Synopsis

  • The study examines how different transfer processes affect the quality, morphology, and electrical properties of monocrystalline graphene by using techniques like optical microscopy, scanning electron microscopy, Raman spectroscopy, and electrical measurements.
  • It highlights that the controlled bubbling electrochemical delamination transfer method is a fast and effective way to transfer large graphene crystals without harming their quality.
  • The research also finds that the oxidation of copper surfaces alters the strain experienced by graphene before transferring it to another substrate, but this strain is minimized after the transfer, resulting in high-quality, homogeneous graphene suitable for devices with low contact resistance.

Article Abstract

In this work, we have investigated the influence of the transfer process on the monocrystalline graphene in terms of quality, morphology and electrical properties by analyzing the data obtained from optical microscopy, scanning electron microscopy, Raman spectroscopy and electrical characterizations. The influence of Cu oxidation on graphene prior to the transfer is also discussed. Our results show that the controlled bubbling electrochemical delamination transfer is an easy and fast transfer technique suitable for transferring large single crystals graphene without degrading the graphene quality. Moreover, Raman spectroscopy investigation reveals that the Cu surface oxidation modifies the strain of the graphene film. We have observed that graphene laying on unoxidized Cu is subject to a biaxial strain in compression, while graphene on Cu oxide is subject to a biaxial strain in tension. However, after graphene was transferred to a host substrate, these strain effects were strongly reduced, leaving a homogeneous graphene on the substrate. The transferred single crystal graphene on silicon oxide substrate was used to fabricate transmission line method (TLM) devices. Electrical measurements show low contact resistance ~150 Ω·µm, which confirms the homogeneity and high quality of transferred graphene.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8541598PMC
http://dx.doi.org/10.3390/nano11102528DOI Listing

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