Cavitation Liquid Phase Exfoliation of Graphene

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32. Grieser, F., et al. Sonochemistry and the Acoustic Bubble, Chapter 3 (Elsevier, 2015). 33. Brems, S., et al. Nanoparticle removal with megasonics: a review. ECS Journal of Solid State Science and Technology 3, N3010-N3015 (2014). 34. Nguyen, T. Q., Liang, Q. Z. & Kausch, H. Kinetics of ultrasonic and transient elongational flow degradation: a comparative study. Polymer 38, 3783-3793 (1997). 35. Kuijpers, M. W., Iedema, P. D., Kemmere, M. F. & Keurentjes, J. T. The mechanism of cavitation- induced polymer scission; experimental and computational verification. Polymer 45, 6461-6467 (2004). 36. Krasyuk, I., et al. Investigation of the spall strength of graphite using nano-and picosecond laser pulses. 653, 012002 (2015). 37. Doktycz, S. J. & Suslick, K. S. Interparticle collisions driven by ultrasound. Science 247, 1067-1069 (1990). 38. Prozorov, T., Prozorov, R. & Suslick, K. S. High velocity interparticle collisions driven by ultrasound. J.Am.Chem.Soc. 126, 13890-13891 (2004). 39. Backes, C., et al. Spectroscopic metrics allow in situ measurement of mean size and thickness of liquid-exfoliated few-layer graphene nanosheets. Nanoscale 8, 4311-4323 (2016). 40. Malard, L., Pimenta, M., Dresselhaus, G. & Dresselhaus, M. Raman spectroscopy in graphene. Physics Reports 473, 51-87 (2009). 41. Pimenta, M., et al. Studying disorder in graphite-based systems by Raman spectroscopy. Physical Chemistry Chemical Physics 9, 1276-1290 (2007). 42. Ferrari, A. C. & Basko, D. M. Raman spectroscopy as a versatile tool for studying the properties of graphene. Nature Nanotechnology 8, 235-246 (2013). 43. Eckmann, A., et al. Probing the nature of defects in graphene by Raman spectroscopy. Nano Letters 12, 3925-3930 (2012). 44. Casiraghi, C., et al. Raman spectroscopy of graphene edges. Nano Letters 9, 1433-1441 (2009). 18

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