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graphene production via nonoxidizing liquid exfoliation

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126. Kuila T, Khanra P, Kim NH, Choi SK, Yun HJ, Lee JH. One-step electrochemical synthesis of 6-amino-4-hydroxy-2-napthalene-sulfonic acid functionalized graphene for green energy storage electrode materials. Nanotechnology. 2013;24(36):365706. 127. Paredes JI, Munuera J. Recent advances and energy-related applications of high quality/chemically doped graphenes obtained by electrochemical exfoliation methods. Journal of Materials Chemistry A. 2017;5(16):7228-7242. 128. Rao KS, Sentilnathan J, Cho HW, Wu JJ, Yoshimura M. Soft Processing of Graphene Nanosheets by Glycine‐Bisulfate Ionic‐Complex‐Assisted Electrochemical Exfoliation of Graphite for Reduction Catalysis. Advanced Functional Materials. 2015;25(2):298-305. 129. Chen C-H, Yang S-W, Chuang M-C, Woon W-Y, Su C-Y. Towards the continuous production of high crystallinity graphene via electrochemical exfoliation with molecular in situ encapsulation. Nanoscale. 2015;7(37):15362-15373. 130. Hossain ST, Wang R. Electrochemical Exfoliation of Graphite: Effect of Temperature and Hydrogen Peroxide Addition. Electrochimica Acta. 2016;216:253-260. 131. Yang S, Brüller S, Wu Z-S, et al. Organic radical-assisted electrochemical exfoliation for the scalable production of high-quality graphene. J. Am. Chem. Soc. 2015;137(43):13927-13932. 132. Zhong YL, Swager TM. Enhanced electrochemical expansion of graphite for in situ electrochemical functionalization. Journal of the American Chemical Society. 2012;134(43):17896-17899. 133. Liscio A, Kouroupis-Agalou K, Betriu XD, et al. Evolution of the size and shape of 2D nanosheets during ultrasonic fragmentation. 2D Materials. 2017;4(2):025017. 134. Salavagione H, Sherwood J, Budarin V, Ellis G, Clark J, Shuttleworth P. Identification of high performance solvents for the sustainable processing of graphene. Green Chemistry. 2017;19(11):2550-2560. 135. Brennen C. Fundamentals of Multiphase flows. 2005 California. Cambridge University Press. 79

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