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graphene production via nonoxidizing liquid exfoliation

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graphene production via nonoxidizing liquid exfoliation ( graphene-production-via-nonoxidizing-liquid-exfoliation )

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75. Sun Z, Masa J, Liu Z, Schuhmann W, Muhler M. Highly concentrated aqueous dispersions of graphene exfoliated by sodium taurodeoxycholate: dispersion behavior and potential application as a catalyst support for the oxygen‐reduction reaction. Chemistry-A European Journal. 2012;18(22):6972-6978. 76. Ayán-Varela M, Paredes J, Guardia L, et al. Achieving extremely concentrated aqueous dispersions of graphene flakes and catalytically efficient graphene-metal nanoparticle hybrids with flavin mononucleotide as a high-performance stabilizer. ACS applied materials & interfaces. 2015;7(19):10293-10307. 77. Paredes J, Villar-Rodil S. Biomolecule-assisted exfoliation and dispersion of graphene and other two-dimensional materials: a review of recent progress and applications. Nanoscale. 2016;8(34):15389-15413. 78. Marcaccio M, Paolucci F. Making and exploiting fullerenes, graphene, and carbon nanotubes. Springer; 2014. 79. Fogden S, Howard CA, Heenan RK, Skipper NT, Shaffer MS. Scalable method for the reductive dissolution, purification, and separation of single-walled carbon nanotubes. ACS nano. 2011;6(1):54-62. 80. Pénicaud A, Drummond C. Deconstructing graphite: Graphenide solutions. Accounts of chemical research. 2012;46(1):129-137. 81. Allemand P, Srdanov G, Koch A, et al. The unusual electron spin resonance of fullerene C60 anion radical. Journal of the American Chemical Society. 1991;113(7):2780-2781. 82. Catheline A, Ortolani L, Morandi V, et al. Solutions of fully exfoliated individual graphene flakes in low boiling point solvents. Soft Matter. 2012;8(30):7882-7887. 83. Bepete G, Anglaret E, Ortolani L, et al. Surfactant-free single-layer graphene in water. Nature Chemistry. 2016. 84. Yi M, Shen Z. A review on mechanical exfoliation for the scalable production of graphene. Journal of Materials Chemistry A. 2015;3(22):11700-11715. 74

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