graphene production via nonoxidizing liquid exfoliation

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96. Liu X, Liu J, Zhan D, et al. Repeated microwave-assisted exfoliation of expandable graphite for the preparation of large scale and high quality multi-layer graphene. RSC Advances. 2013;3(29):11601-11606. 97. Sridhar V, Jeon J-H, Oh I-K. Synthesis of graphene nano-sheets using eco-friendly chemicals and microwave radiation. Carbon. 2010;48(10):2953-2957. 98. Liu X, Zhan D, Chao D, et al. Microwave-assisted production of giant graphene sheets for high performance energy storage applications. Journal of Materials Chemistry A. 2014;2(31):12166-12170. 99. Hummers Jr WS, Offeman RE. Preparation of graphitic oxide. Journal of the American Chemical Society. 1958;80(6):1339-1339. 100. Lin J, Huang Y, Wang S, Chen G. Microwave-assisted rapid exfoliation of graphite into graphene by using ammonium bicarbonate as the intercalation agent. Industrial & Engineering Chemistry Research. 2017;56(33):9341-9346. 101. Tang Y, Lee CS, Chen Z, et al. High-quality graphenes via a facile quenching method for field-effect transistors. Nano letters. 2009;9(4):1374-1377. 102. Rangappa D, Sone K, Wang M, et al. Rapid and Direct Conversion of Graphite Crystals into High‐Yielding, Good‐Quality Graphene by Supercritical Fluid Exfoliation. Chemistry–A European Journal. 2010;16(22):6488-6494. 103. Song N, Jia J, Wang W, Gao Y, Zhao Y, Chen Y. Green production of pristine graphene using fluid dynamic force in supercritical CO2. Chemical Engineering Journal. 2016;298:198-205. 104. Chen X, Dobson JF, Raston CL. Vortex fluidic exfoliation of graphite and boron nitride. Chemical Communications. 2012;48(31):3703-3705. 105. Wahid MH, Eroglu E, Chen X, Smith SM, Raston CL. Functional multi-layer graphene–algae hybrid material formed using vortex fluidics. Green Chemistry. 2013;15(3):650-655. 106. Tran TS, Park SJ, Yoo SS, Lee T-R, Kim T. High shear-induced exfoliation of graphite into high quality graphene by Taylor–Couette flow. RSC Adv. 2016;6(15):12003-12008. 76

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