State-of-the-Art Graphene Synthesis Methods

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Applied and Environmental Soil Science 23 [81] J. Robinson, X. Weng, K. Trumbull et al., “Nucleation of epitaxial graphene on SiC(0001),” ACS Nano, vol. 4, no. 1, pp. 153–158, 2010. [82]J. R. Prekodravac, D. P. Kepic ́, J. C. Colmenares, D. A. Giannakoudakis, and S. P. Jovanovic ́, “A comprehensive review on selected graphene synthesis methods: from elec- trochemical exfoliation through rapid thermal annealing towards biomass pyrolysis,” Journal of Materials Chemistry C, vol. 9, no. 21, pp. 6722–6748, 2021. [83] N.H.Barbhuiya,A.Kumar,A.Singhetal.,“Tefutureoffash graphene for the sustainable management of solid waste,” ACS Nano, vol. 15, no. 10, Article ID 15461, 2021. [84] B.Deng,D.X.Luong,Z.Wang,C.Kittrell,E.A.McHugh,and J. M. Tour, “Urban mining by fash joule heating,” Nature Communications, vol. 12, no. 1, p. 5794, 2021. [85] W. Chen, J. T. Li, Z. Wang et al., “Ultrafast and controllable phase evolution by fash joule heating,” ACS Nano, vol. 15, no. 7, Article ID 11158, 2021. [86] W. Chen, Z. Wang, K. v Bets et al., “Millisecond conversion of metastable 2D materials by fash joule heating,” ACS Nano, vol. 15, no. 1, pp. 1282–1290, 2021. [87] P. A. Advincula, D. X. Luong, W. Chen, S. Raghuraman, R. Shahsavari, and J. M. Tour, “Flash graphene from rubber waste,” Carbon, vol. 178, pp. 649–656, 2021. [88] K.M.Wyss,J.L.Beckham,W.Chenetal.,“Convertingplastic waste pyrolysis ash into fash graphene,” Carbon, vol. 174, pp. 430–438, 2021. [89] W. A. Algozeeb, P. E. Savas, D. X. Luong et al., “Flash gra- phene from plastic waste,” ACS Nano, vol. 14, no. 11, Article ID 15595, 2020. [90] W. S. Hummers and R. E. Ofeman, “Preparation of graphitic oxide,” Journal of the American Chemical Society, vol. 80, no. 6, p. 1339, 1958. [91] S. T. Hossain and R. Wang, “Electrochemical exfoliation of graphite: efect of temperature and hydrogen peroxide ad- dition,” Electrochimica Acta, vol. 216, pp. 253–260, 2016. [92] R. Arvidsson, D. Kushnir, B. A. Sande ́n, and S. Molander, “Prospective life cycle assessment of graphene production by ultrasonication and chemical reduction,” Environmental Science and Technology, vol. 48, no. 8, pp. 4529–4536, 2014. [93] H. Yu, B. Zhang, C. Bulin, R. Li, and R. Xing, “High-efcient synthesis of graphene oxide based on improved Hummers method,” Scientifc Reports, vol. 6, no. 1, Article ID 36143, 2016. [94] T. Somanathan, K. Prasad, K. Ostrikov, A. Saravanan, V. Krishna, and V. M. Krishna, “Graphene oxide synthesis from agro waste,” Nanomaterials, vol. 5, no. 2, pp. 826–834, 2015. [95] J. Chen, B. Yao, C. Li, and G. Shi, “An improved Hummers method for eco-friendly synthesis of graphene oxide,” Carbon, vol. 64, pp. 225–229, 2013. [96] N. A. Banek, D. T. Abele, K. R. McKenzie, and M. J. Wagner, “Sustainable conversion of lignocellulose to high-purity, highly crystalline fake potato graphite,” ACS Sustainable Chemistry & Engineering, vol. 6, no. 10, Article ID 13199, 2018. [97] M. Cossutta, J. McKechnie, and S. J. Pickering, “A compar- ative LCA of diferent graphene production routes,” Green Chemistry, vol. 19, no. 24, pp. 5874–5884, 2017. [98] R. Arvidsson and S. Molander, “Prospective life cycle as- sessment of epitaxial graphene production at diferent manufacturing scales and maturity,” Journal of Industrial Ecology, vol. 21, no. 5, pp. 1153–1164, 2017. [99] K. v Manukyan, S. Rouvimov, E. E. Wolf, and A. S. Mukasyan, “Combustion synthesis of graphene materials,” Carbon, vol. 62, pp. 302–311, 2013.

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