graphene production via nonoxidizing liquid exfoliation

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34. Arao Y, Mori F, Kubouchi M. Efficient solvent systems for improving production of few- layer graphene in liquid phase exfoliation. Carbon. 2017;118:18-24. 35. Kozhemyakina NV, Eigler S, Dinnebier RE, Inayat A, Schwieger W, Hirsch A. Effect of the structure and morphology of natural, synthetic and post-processed graphites on their dispersibility and electronic properties. Fullerenes, Nanotubes and Carbon Nanostructures. 2013;21(9):804-823. 36. Warner JH, Schäffel F, Bachmatiuk A, Rümmeli MH. Chapter 4 - Methods for Obtaining Graphene. Graphene: Elsevier; 2013:129-228. 37. Çelik Y, Flahaut E, Suvacı E. A comparative study on few-layer graphene production by exfoliation of different starting materials in a low boiling point solvent. FlatChem. 2017;1:74- 88. 38. Liu L, Qing M, Wang Y, Chen S. Defects in graphene: generation, healing, and their effects on the properties of graphene: a review. Journal of Materials Science & Technology. 2015;31(6):599-606. 39. Capasso A, Castillo ADR, Sun H, Ansaldo A, Pellegrini V, Bonaccorso F. Ink-jet printing of graphene for flexible electronics: an environmentally-friendly approach. Solid State Communications. 2015;224:53-63. 40. Paton KR, Varrla E, Backes C, et al. Scalable production of large quantities of defect-free few-layer graphene by shear exfoliation in liquids. Nature materials. 2014;13(6):624-630. 41. Liu L, Shen Z, Yi M, Zhang X, Ma S. A green, rapid and size-controlled production of high- quality graphene sheets by hydrodynamic forces. RSC Advances. 2014;4(69):36464-36470. 42. Liu W, Tanna VA, Yavitt BM, Dimitrakopoulos C, Winter HH. Fast Production of High- Quality Graphene via Sequential Liquid Exfoliation. ACS applied materials & interfaces. 2015;7(49):27027-27030. 43. Li L, Xu J, Li G, et al. Preparation of graphene nanosheets by shear-assisted supercritical CO 2 exfoliation. Chemical Engineering Journal. 2016;284:78-84. 70

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