Jie Sun, Matthew T. Cole
A noncatalytic chemical vapor deposition mechanism is proposed, where high precursor concentration, long deposition time, high temperature, and flat substrate are needed to grow large-area nanocrystalline graphene using hydrocarbon pyrolysis. The graphene is scalable, uniform, and with controlled thickness. It can be deposited on virtually any nonmetallic substrate that withstands up to 1000 °C. For typical examples, graphene grown directly on quartz and sapphire shows transmittance and conductivity similar to exfoliated or metal-catalyzed graphene, as evidenced by transmission spectroscopy and transport measurements. Raman spectroscopy confirms the sp2-C structure. The model and results demonstrate a promising transfer-free technique for transparent electrode production.
@article{57bce39e-3b58-48a4-b71c-06645752563e,
title={Noncatalytic chemical vapor deposition o},
author={Jie Sun and Matthew T. Cole},
year={2026},
language={en}
}TY - JOUR TI - Noncatalytic chemical vapor deposition o AU - Jie Sun AU - Matthew T. Cole PY - 2026 LA - en ER -
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