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112. L. Pereira, R. Pereira, M.F.R. Pereira, M.M. Alves, Effect of different carbon materials as
electron shuttles in the anaerobic biotransformation of nitroanilines. Biotechnol. Bioeng. 113,
1194–1202 (2016)
113. D.S. Su, S. Perathoner, G. Centi, Nanocarbons for the development of advanced catalysts.
Chem. Rev. 113, 5782–5816 (2013)
114. R.W. Pekala, Organic aerogels from the polycondensation of resorcinol with formaldehyde.
J. Mater. Sci. 24, 3221–3227 (1989)
115. R.P. Rocha, M.F.R. Pereira, J.L. Figueiredo, Carbon as a catalyst: Esterification of acetic acid
with ethanol. Catal. Today 218–219, 51–56 (2013)
116. J.P.S. Sousa, M.F.R. Pereira, J.L. Figueiredo, NO oxidation over nitrogen doped carbon
xerogels. Appl. Catal. B 125, 398–408 (2012)
117. R.P. Rocha, J. Restivo, J.P.S. Sousa, J.J.M. Órfão, M.F.R. Pereira, J.L. Figueiredo, Nitrogendoped carbon xerogels as catalysts for advanced oxidation processes. Catal. Today 241, 73–79
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118. B. Xing, J.J. Pignatello, Sorption of Organic Chemicals, in Encyclopedia of Soils in the
Environment, ed. by D. Hillel, (Elsevier, Oxford, 2005), pp. 537–548
119. T.W. Kirchstetter, T. Novakov, Controlled generation of black carbon particles from a
diffusion flame and applications in evaluating black carbon measurement methods. Atmos.
Environ. 41, 1874–1888 (2007)
120. X.D. Yu, W.W. Gong, X.H. Liu, H.Y. Bao, The reductive mechanism of nitrobenzene
catalyzed by nine charcoals in sulfides solution. Sci. China Chem. 55, 1–7 (2012)
121. H. Amezquita-Garcia, E. Razo-Flores, F. Cervantes, J. Rangel-Mendez, Activated carbon
fibers as redox mediators for the increased reduction of nitroaromatics. Carbon 55, 276–284
(2013)
122. R.P. Schwarzenbach, P.M. Gschwend, D.M. Imboden, Environmental Organic Chemistry
(Wiley, Hoboken, 2005)
123. W. Gong, X. Liu, S. Xia, B. Liang, W. Zhang, Abiotic reduction of trifluralin and
pendimethalin by sulfides in black-carbon-amended coastal sediments. J. Hazard. Mater. 310,
125–134 (2016)
124. S.Y. Oh, P.C. Chiu, Graphite-and soot-mediated reduction of 2,4-dinitrotoluene and
hexahydro-1,3,5-trinitro-1,3,5-triazine. Environ. Sci. Technol. 43, 6983–6988 (2009)
125. X. Yu, H. Cheng, M. Zhang, Y. Zhao, L. Qu, G. Shi, Graphene-based smart materials. Nat.
Rev. Mater. 2, 17046 (2017)
126. A.J. Clancy, M.K. Bayazit, S.A. Hodge, N.T. Skipper, C.A. Howard, M.S.P. Shaffer, Charged
carbon nanomaterials: Redox chemistries of fullerenes, carbon nanotubes, and graphenes.
Chem. Rev. 118, 7363–7408 (2018)
127. A. Narita, X.-Y. Wang, X. Feng, K. Mullen, New advances in nanographene chemistry. Chem.
Soc. Rev. 44, 6616–6643 (2015)
128. V. Georgakilas, J.N. Tiwari, K.C. Kemp, J.A. Perman, A.B. Bourlinos, K.S. Kim, R.
Zboril, Noncovalent functionalization of graphene and graphene oxide for energy materials,
biosensing, catalytic, and biomedical applications. Chem. Rev. 116, 5464–5519 (2016)
129. Y. Suda, T. Ono, M. Akazawa, Y. Sakai, J. Tsujino, N. Homma, Preparation of carbon
nanoparticles by plasma-assisted pulsed laser deposition method—Size and binding energy
dependence on ambient gas pressure and plasma condition. Thin Solid Films 415, 15–20
(2002)
130. Y.-P. Sun, B. Zhou, Y. Lin, W. Wang, K.A.S. Fernando, P. Pathak, M.J. Meziani, B.A. Harruff,
X. Wang, H.F. Wang, P.J.G. Luo, H. Yang, M.E. Kose, B.L. Chen, L.M. Veca, S.-Y. Xie,
Quantum-sized carbon dots for bright and colorful photoluminescence. J. Am. Chem. Soc.
128, 7756–7757 (2006)
131. D. Pan, J. Zhang, Z. Li, M. Wu, Hydrothermal route for cutting graphene sheets into blueluminescent graphene quantum dots. Adv. Mater. 22, 734–738 (2010)
309
111. L.F. Wang, J. Zhang, D.S. Su, Y.Y. Ji, X.J. Cao, F.S. Xiao, Simple preparation of honeycomblike macrostructured and microporous carbons with high performance in oxidative dehydrogenation of ethylbenzene. Chem. Mater. 19, 2894–2897 (2007)
112. L. Pereira, R. Pereira, M.F.R. Pereira, M.M. Alves, Effect of different carbon materials as
electron shuttles in the anaerobic biotransformation of nitroanilines. Biotechnol. Bioeng. 113,
1194–1202 (2016)
113. D.S. Su, S. Perathoner, G. Centi, Nanocarbons for the development of advanced catalysts.
Chem. Rev. 113, 5782–5816 (2013)
114. R.W. Pekala, Organic aerogels from the polycondensation of resorcinol with formaldehyde.
J. Mater. Sci. 24, 3221–3227 (1989)
115. R.P. Rocha, M.F.R. Pereira, J.L. Figueiredo, Carbon as a catalyst: Esterification of acetic acid
with ethanol. Catal. Today 218–219, 51–56 (2013)
116. J.P.S. Sousa, M.F.R. Pereira, J.L. Figueiredo, NO oxidation over nitrogen doped carbon
xerogels. Appl. Catal. B 125, 398–408 (2012)
117. R.P. Rocha, J. Restivo, J.P.S. Sousa, J.J.M. Órfão, M.F.R. Pereira, J.L. Figueiredo, Nitrogendoped carbon xerogels as catalysts for advanced oxidation processes. Catal. Today 241, 73–79
(2015)
118. B. Xing, J.J. Pignatello, Sorption of Organic Chemicals, in Encyclopedia of Soils in the
Environment, ed. by D. Hillel, (Elsevier, Oxford, 2005), pp. 537–548
119. T.W. Kirchstetter, T. Novakov, Controlled generation of black carbon particles from a
diffusion flame and applications in evaluating black carbon measurement methods. Atmos.
Environ. 41, 1874–1888 (2007)
120. X.D. Yu, W.W. Gong, X.H. Liu, H.Y. Bao, The reductive mechanism of nitrobenzene
catalyzed by nine charcoals in sulfides solution. Sci. China Chem. 55, 1–7 (2012)
121. H. Amezquita-Garcia, E. Razo-Flores, F. Cervantes, J. Rangel-Mendez, Activated carbon
fibers as redox mediators for the increased reduction of nitroaromatics. Carbon 55, 276–284
(2013)
122. R.P. Schwarzenbach, P.M. Gschwend, D.M. Imboden, Environmental Organic Chemistry
(Wiley, Hoboken, 2005)
123. W. Gong, X. Liu, S. Xia, B. Liang, W. Zhang, Abiotic reduction of trifluralin and
pendimethalin by sulfides in black-carbon-amended coastal sediments. J. Hazard. Mater. 310,
125–134 (2016)
124. S.Y. Oh, P.C. Chiu, Graphite-and soot-mediated reduction of 2,4-dinitrotoluene and
hexahydro-1,3,5-trinitro-1,3,5-triazine. Environ. Sci. Technol. 43, 6983–6988 (2009)
125. X. Yu, H. Cheng, M. Zhang, Y. Zhao, L. Qu, G. Shi, Graphene-based smart materials. Nat.
Rev. Mater. 2, 17046 (2017)
126. A.J. Clancy, M.K. Bayazit, S.A. Hodge, N.T. Skipper, C.A. Howard, M.S.P. Shaffer, Charged
carbon nanomaterials: Redox chemistries of fullerenes, carbon nanotubes, and graphenes.
Chem. Rev. 118, 7363–7408 (2018)
127. A. Narita, X.-Y. Wang, X. Feng, K. Mullen, New advances in nanographene chemistry. Chem.
Soc. Rev. 44, 6616–6643 (2015)
128. V. Georgakilas, J.N. Tiwari, K.C. Kemp, J.A. Perman, A.B. Bourlinos, K.S. Kim, R.
Zboril, Noncovalent functionalization of graphene and graphene oxide for energy materials,
biosensing, catalytic, and biomedical applications. Chem. Rev. 116, 5464–5519 (2016)
129. Y. Suda, T. Ono, M. Akazawa, Y. Sakai, J. Tsujino, N. Homma, Preparation of carbon
nanoparticles by plasma-assisted pulsed laser deposition method—Size and binding energy
dependence on ambient gas pressure and plasma condition. Thin Solid Films 415, 15–20
(2002)
130. Y.-P. Sun, B. Zhou, Y. Lin, W. Wang, K.A.S. Fernando, P. Pathak, M.J. Meziani, B.A. Harruff,
X. Wang, H.F. Wang, P.J.G. Luo, H. Yang, M.E. Kose, B.L. Chen, L.M. Veca, S.-Y. Xie,
Quantum-sized carbon dots for bright and colorful photoluminescence. J. Am. Chem. Soc.
128, 7756–7757 (2006)
131. D. Pan, J. Zhang, Z. Li, M. Wu, Hydrothermal route for cutting graphene sheets into blueluminescent graphene quantum dots. Adv. Mater. 22, 734–738 (2010)
