Composites Containing Inorganic Ion Exchangers …
109
61. Volfkovich YM, Sosenkin VE (2012) Porous structure and wetting of fuel cell components as
the factors determining their electrochemical characteristics. Russ Chem Rev 81(10):936–959
62. Volfkovich YM, Sakars AV, Volinsky AA (2005) Application of the standard porosimetry
method for nanomaterials. Int J Nanotechnol 2(3):292–302
63. Seresht RJ, Jahanshahi M, Rashidi A et al (2013) Synthesize and characterization of graphene
nanosheets with high surface area and nano-porous structure. Appl Surf Sci 276:672–681
64. McAllister MJ, Li J-L, Adamson DH et al (2007) Single sheet functionalized graphene by
oxidation and thermal expansion of graphite. Chem Mater 19(18):4396–4404
65. Volfkovich YM, Rychagov AY, Sosenkin VE (2014) Measuring the specific surface area of
carbon nanomaterials by different methods. Russ J Electrochem 50(11):1099–1101
66. Shulga YM, Baskakov SA, Baskakova YV et al (2015) Supercapacitors with graphene oxide
separators and reduced graphite oxide electrodes. J Power Sources 279:722–730
67. Kononenko NA, Berezina NP, Vol’fkovich YM et al (1985) Investigation of ion-exchange
materials structure by standard porosimetry method. J Appl Chem USSR 58(10):2029–2033
68. Volfkovich YM, Sosenkin VE, Nikolskaya NF et al (2008) Porous structure and hydrophilichydrophobic properties of gas diffusion layers of the electrodes in proton-exchange membrane
fuel cells. Russ J Electrochem 44(3):278–285
69. Volfkovich YM, Lobach AS, Spitsyna NG et al (2019) Hydrophilic and hydrophobic pores in
reduced graphene oxide aerogel. J Porous Mat 26(4):1111–1119
70. Shulga YM, Baskakov SA, Baskakova YV et al (2017) Hybrid porous carbon materials derived
from composite of humic acid and graphene oxide. Micropor Mesopor Mater 245:24–30
71. Shulga YM, Baskakov SA, Baskakova YV et al (2018) Preparation of graphene oxide-humic
acid composite-based ink for printing thin film electrodes for micro-supercapacitors. J Alloy
Compd 730:88–95
72. Szabo T, Tombacz E, Illes E et al (2018) Enhanced acidity and pH-dependent surface charge
characterization of successively oxidized graphite oxides. Carbon 44:537–545
73. Konkena B, Vasudevan S (2012) Understanding aqueous dispersibility of graphene oxide and
reduced graphene oxide through pKa measurements. J Phys Chem Lett 3(7):867–872
74. Peng W, Li H, Liu Y et al (2017) A review on heavy metal ions adsorption from water by
graphene oxide and its composites. J Molec Liq 230:496–504
75. Luo X, Wang C, Wang L (2013) Nanocomposites of graphene oxide-hydrated zirconium oxide
for simultaneous removal of As(III) and As(V) from water. Chem Eng J 220:98–106
76. Fu D, He Z, Su S et al (2017) Fabrication of a-FeOOH decorated graphene oxide-carbon
nanotubes aerogel and its application in adsorption of arsenic species. J Colloid Interface Sci
505:105–114
77. Su H, Ye Z, Hmidi N ((2017) High-performance iron oxide–graphene oxide nanocompositeadsorbents for arsenic removal. Colloids Surf A: Physicochem Eng Aspects 522:161–172
78. Yoon Y, Park WK, Hwang T-M et al (2016) Comparative evaluation of magnetite–graphene
oxide and magnetite-reduced graphene oxide composite for As(III) and As(V)removal. J Hazard
Mater 304:196–204
79. Zheng Y, Cheng B, You W et al (2019) 3D hierarchical graphene oxide-NiFe LDH composite
with enhanced adsorption affinity to Congo red, methyl orange and Cr(VI) ions. J Hazard Mater
369:214–225
80. Yang A, Zhu Y, Huang CP (2018) Facile preparation and adsorption performance of graphene
oxide-manganese oxide composite for uranium. Sci Rep 8:90584. https://doi.org/10.1038/s41
598-018-27111-y
81. Zhang B, Zhao R, Sun D et al (2019) Sustainable fabrication of graphene oxide/manganese
oxide composites for removing phenolic compounds by adsorption-oxidation process. J Cleaner
Prod 215:165–174
82. Nguyen-Phan T-D, Pham VH, Shin FW et al (2011) The role of graphene oxide content on
the adsorption-enhanced photocatalysis of titanium dioxide/graphene oxide composites. Chem
Eng J 170(1):226–232
83. Fan L, Luo C, Li X et al (2012) Fabrication of novel magnetic chitosan grafted with graphene
oxide to enhance adsorption properties for methyl blue. J Hazard Mater 215–215:272
109
61. Volfkovich YM, Sosenkin VE (2012) Porous structure and wetting of fuel cell components as
the factors determining their electrochemical characteristics. Russ Chem Rev 81(10):936–959
62. Volfkovich YM, Sakars AV, Volinsky AA (2005) Application of the standard porosimetry
method for nanomaterials. Int J Nanotechnol 2(3):292–302
63. Seresht RJ, Jahanshahi M, Rashidi A et al (2013) Synthesize and characterization of graphene
nanosheets with high surface area and nano-porous structure. Appl Surf Sci 276:672–681
64. McAllister MJ, Li J-L, Adamson DH et al (2007) Single sheet functionalized graphene by
oxidation and thermal expansion of graphite. Chem Mater 19(18):4396–4404
65. Volfkovich YM, Rychagov AY, Sosenkin VE (2014) Measuring the specific surface area of
carbon nanomaterials by different methods. Russ J Electrochem 50(11):1099–1101
66. Shulga YM, Baskakov SA, Baskakova YV et al (2015) Supercapacitors with graphene oxide
separators and reduced graphite oxide electrodes. J Power Sources 279:722–730
67. Kononenko NA, Berezina NP, Vol’fkovich YM et al (1985) Investigation of ion-exchange
materials structure by standard porosimetry method. J Appl Chem USSR 58(10):2029–2033
68. Volfkovich YM, Sosenkin VE, Nikolskaya NF et al (2008) Porous structure and hydrophilichydrophobic properties of gas diffusion layers of the electrodes in proton-exchange membrane
fuel cells. Russ J Electrochem 44(3):278–285
69. Volfkovich YM, Lobach AS, Spitsyna NG et al (2019) Hydrophilic and hydrophobic pores in
reduced graphene oxide aerogel. J Porous Mat 26(4):1111–1119
70. Shulga YM, Baskakov SA, Baskakova YV et al (2017) Hybrid porous carbon materials derived
from composite of humic acid and graphene oxide. Micropor Mesopor Mater 245:24–30
71. Shulga YM, Baskakov SA, Baskakova YV et al (2018) Preparation of graphene oxide-humic
acid composite-based ink for printing thin film electrodes for micro-supercapacitors. J Alloy
Compd 730:88–95
72. Szabo T, Tombacz E, Illes E et al (2018) Enhanced acidity and pH-dependent surface charge
characterization of successively oxidized graphite oxides. Carbon 44:537–545
73. Konkena B, Vasudevan S (2012) Understanding aqueous dispersibility of graphene oxide and
reduced graphene oxide through pKa measurements. J Phys Chem Lett 3(7):867–872
74. Peng W, Li H, Liu Y et al (2017) A review on heavy metal ions adsorption from water by
graphene oxide and its composites. J Molec Liq 230:496–504
75. Luo X, Wang C, Wang L (2013) Nanocomposites of graphene oxide-hydrated zirconium oxide
for simultaneous removal of As(III) and As(V) from water. Chem Eng J 220:98–106
76. Fu D, He Z, Su S et al (2017) Fabrication of a-FeOOH decorated graphene oxide-carbon
nanotubes aerogel and its application in adsorption of arsenic species. J Colloid Interface Sci
505:105–114
77. Su H, Ye Z, Hmidi N ((2017) High-performance iron oxide–graphene oxide nanocompositeadsorbents for arsenic removal. Colloids Surf A: Physicochem Eng Aspects 522:161–172
78. Yoon Y, Park WK, Hwang T-M et al (2016) Comparative evaluation of magnetite–graphene
oxide and magnetite-reduced graphene oxide composite for As(III) and As(V)removal. J Hazard
Mater 304:196–204
79. Zheng Y, Cheng B, You W et al (2019) 3D hierarchical graphene oxide-NiFe LDH composite
with enhanced adsorption affinity to Congo red, methyl orange and Cr(VI) ions. J Hazard Mater
369:214–225
80. Yang A, Zhu Y, Huang CP (2018) Facile preparation and adsorption performance of graphene
oxide-manganese oxide composite for uranium. Sci Rep 8:90584. https://doi.org/10.1038/s41
598-018-27111-y
81. Zhang B, Zhao R, Sun D et al (2019) Sustainable fabrication of graphene oxide/manganese
oxide composites for removing phenolic compounds by adsorption-oxidation process. J Cleaner
Prod 215:165–174
82. Nguyen-Phan T-D, Pham VH, Shin FW et al (2011) The role of graphene oxide content on
the adsorption-enhanced photocatalysis of titanium dioxide/graphene oxide composites. Chem
Eng J 170(1):226–232
83. Fan L, Luo C, Li X et al (2012) Fabrication of novel magnetic chitosan grafted with graphene
oxide to enhance adsorption properties for methyl blue. J Hazard Mater 215–215:272
