2017/01/13 by Shantanu Das, Jeff Drucker · 2 citations
Materials Science · Engineering · #Graphene research and applications #Advanced Memory and Neural Computing #Semiconductor materials and devices
paper · doi:10.1088/1361-6528/aa593b
openalex publication_date 2017/01/13 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/05
Abstract The nucleation density and average size of graphene crystallites grown using cold wall chemical vapor deposition (CVD) on 4 μ m thick Cu films electrodeposited on W substrates can be tuned by varying growth parameters. Growth at a fixed substrate temperature of 1000 °C and total pressure of 700 Torr using Ar, H 2 and CH 4 mixtures enabled the contribution of total flow rate, CH 4 :H 2 ratio and dilution of the CH 4 /H 2 mixture by Ar to be identified. The largest variation in nucleation density was obtained by varying the CH 4 :H 2 ratio. The observed morphological changes are analogous to those that would be expected if the deposition rate were varied at fixed substrate temperature for physical deposition using thermal evaporation. The graphene crystallite boundary morphology progresses from irregular/jagged through convex hexagonal to regular hexagonal as the effective C deposition rate decreases. This observation suggests that edge diffusion of C atoms along the crystallite boundaries, in addition to H 2 etching, may contribute to shape evolution of the graphene crystallites. These results demonstrate that graphene grown using cold wall CVD follows a nucleation and growth mechanism similar to hot wall CVD. As a consequence, the vast knowledge base relevant to hot wall CVD may be exploited for graphene synthesis by the industrially preferable cold wall method.