Chemical Vapor Deposition of Hexagonal Boron Nitride
Satoru Suzuki, Hiroki Hibino
Abstract
Open-access reader
Satoru Suzuki, Hiroki Hibino
Abstract
Open-access reader
Nanometer-thick hexagonal boron nitride thin films were grown by thermal chemical vapor deposition on polycrystalline Ni, Co, and Cu substrates. A thicker and more regularly stacked film was grown on a Ni substrate, whereas a smaller film thickness and more turbostratic stacking or smaller domain size were observed on Cu. Intermediate situations were observed on Co. The substrate material dependence strongly suggests that the substrate plays an important role in h-BN growth, like it does in graphene growth, although nitrogen is almost insoluble even in Ni. Grain boundaries may accommodate boron and nitrogen atoms at a growth temperature. [DOI: 10.1380/ejssnt.2012.133]
OpenAlex reports 18 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Nanometer-thick hexagonal boron nitride thin films were grown by thermal chemical vapor deposition on polycrystalline Ni, Co, and Cu substrates. A thicker and more regularly stacked film was grown on a Ni substrate, whereas a smaller film thickness and more turbostratic stacking or smaller domain size were observed on Cu. Intermediate situations were observed on Co. The substrate material dependence strongly suggests that the substrate plays an important role in h-BN growth, like it does in graphene growth, although nitrogen is almost insoluble even in Ni. Grain boundaries may accommodate boron and nitrogen atoms at a growth temperature. [DOI: 10.1380/ejssnt.2012.133]
Key concepts: Chemical vapor deposition, Materials science, Crystallite, Substrate (aquarium), Graphene, Boron, Nitrogen, Stacking