graphene production via nonoxidizing liquid exfoliation

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136. Cullen PL, Cox KM, Subhan MKB, et al. Ionic solutions of two-dimensional materials. Nature Chemistry. 2017;9(3):244-249. 137. Britnell L, Ribeiro R, Eckmann A, et al. Strong light-matter interactions in heterostructures of atomically thin films. Science. 2013;340(6138):1311-1314. 138. Wu Q, Jang SK, Park S, et al. In situ synthesis of a large area boron nitride/graphene monolayer/boron nitride film by chemical vapor deposition. Nanoscale. 2015;7(17):7574- 7579. 139. Novoselov K, Mishchenko A, Carvalho A, Neto AC. 2D materials and van der Waals heterostructures. Science. 2016;353(6298):aac9439. 140. Herron CR, Coleman KS, Edwards RS, Mendis BG. Simple and scalable route for the ‘bottom-up’synthesis of few-layer graphene platelets and thin films. Journal of Materials Chemistry. 2011;21(10):3378-3383. 141. Wang S, Hibino H, Suzuki S, Yamamoto H. Atmospheric pressure chemical vapor deposition growth of millimeter-scale single-crystalline graphene on the copper surface with a native oxide layer. Chemistry of Materials. 2016;28(14):4893-4900. 142. Bointon TH, Barnes MD, Russo S, Craciun MF. High Quality Monolayer Graphene Synthesized by Resistive Heating Cold Wall Chemical Vapor Deposition. Advanced Materials. 2015;27(28):4200-4206. 143. Polsen ES, McNerny DQ, Viswanath B, Pattinson SW, Hart AJ. High-speed roll-to-roll manufacturing of graphene using a concentric tube CVD reactor. Scientific reports. 2015;5. 144. Subrahmanyam K, Panchakarla L, Govindaraj A, Rao C. Simple method of preparing graphene flakes by an arc-discharge method. The Journal of Physical Chemistry C. 2009;113(11):4257-4259. 145. Qin B, Zhang T, Chen H, Ma Y. The growth mechanism of few-layer graphene in the arc discharge process. Carbon. 2016;102:494-498. 80

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