110
M. H. Köhler et al.
90. Li N, Chen J, Shi Y-P (2019) Magnetic polyethyleneimine functionalized reduced graphene
oxide as a novel magnetic sorbent for the separation of polar non-steroidal anti-inflammatory
drugs in waters. Talanta 191:526–534
91. Tran TV, Nguyen DTC, Le HT, Vo D-VN, Nanda S, Nguyen TD (2020) Optimization, equilibrium, adsorption behavior and role of surface functional groups on graphene oxide-based
nanocomposite towards diclofenac drug. J Environ Sci 93:137–150
92. Ritz B, Zhao Y, Krishnadasan A, Kennedy N, Morgenstern H (2006) Estimated effects of
hydrazine exposure on cancer incidence and mortality in aerospace workers. Epidemiology
2006:154–161
93. Aigner BA, Darsow U, Grosber M, Ring J, Plötz SG (2010) Multiple basal cell carcinomas
after long-term exposure to hydrazine: case report and review of the literature. Dermatology
221:300–302
94. Xu X, Pereira LFC, Wang Y, Wu J, Zhang K, Zhao X, Bae S, Bui CT, Xie R, Thong BH,
Loh KP, Donadio D, Li B, Özyilmaz B (2014) Length-dependent thermal conductivity in
suspended single-layer graphene. Nat Commun 5:3689
95. Crook C, Bauer J, Izard AG, de Oliveira CS, de Souza e Silva JM, Berger JB, Valdevit L (2020)
Plate-nanolattices at the theoretical limit of stiffness and strength. Nat Commun 11:1579
96. Perilla JR, Schulten K (2017) Physical properties of the HIV-1 capsid from all-atom molecular
dynamics simulations. Nat Commun 8:15959
97. Brenner DW, Shenderova OA, Harrison JA, Stuart SJ, Ni B, Sinnott SB (2002) A
second-generation Reactive Empirical Bond Order (REBO) potential energy expression for
hydrocarbons. J Phys: Condens Matter 14:783–802
98. Yeo J, Jung GS, Mart´ ın-Mart´ ınez FJ, Beem J, Qin Z, Buehler MJ (2019) Multiscale
design of graphyne-based materials for high-performance separation membranes. Adv Mater
31:1805665
99. Srinivasan SG, van Duin ACT, Ganesh P (2015) Development of a ReaxFF potential for
carbon condensed phases and its application to the thermal fragmentation of a large fullerene.
J Phys Chem A 119:571–580
100. Lee J-U, Yoon D, Cheong H (2012) Estimation of young’s modulus of graphene by Raman
spectroscopy. Nano Lett 12:4444–4448
101. Paci JT, Belytschko T, Schatz GC (2007) Computational studies of the structure, behavior
upon heating, and mechanical properties of graphite oxide. J Phys Chem C 111:18099–18111
102. Gómez-Navarro C, Meyer JC, Sundaram RS, Chuvilin A, Kurasch S, Burghard M, Kern K,
Kaiser U (2010) Atomic structure of reduced graphene oxide. Nano Lett 10:1144–1148
103. Suk ME, Aluru NR (2010) Water transport through ultrathin graphene. J Phys Chem Lett
1:1590–1594
104. Cohen-Tanugi D, Grossman JC (2012) Water desalination across nanoporous graphene. Nano
Lett 12:3602–3608
105. Cho KM, Lee H-J, Nam YT, Kim Y-J, Kim C, Kang KM, Ruiz Torres CA, Kim DW, Jung H-T
(2019) Ultrafast-selective nanofiltration of an hybrid membrane comprising laminated reduced
graphene oxide/Graphene oxide nanoribbons. ACS Appl Mater Interf 11:27004–27010
106. Wei N, Peng X, Xu Z (2014) Understanding water permeation in graphene oxide membranes.
ACS Appl Mater Interf 6:5877–5883
107. Falk K, Sedlmeier F, Joly L, Netz RR, Bocquet L (2010) Molecular origin of fast water
transport in carbon nanotube membranes: superlubricity versus curvature dependent friction.
Nano Lett 10:4067–4073
108. Chen B, Jiang H, Liu X, Hu X (2017) Molecular insight into water desalination across
multilayer graphene oxide membranes. ACS Appl Mater Interfaces 9:22826–22836
109. Qiu H, Xue M, Shen C, Zhang Z, Guo W (2019) Graphynes for water desalination and gas
separation. Adv Mater 31:1803772
110. Köhler MH, Bordin JR, Barbosa MC (2019) Ion flocculation in water: from bulk to nanoporous
membrane desalination. J Mol Liq 277:516–521
111. Kou J, Zhou X, Chen Y, Lu H, Wu F, Fan J (2013) Water permeation through single-layer
graphyne membrane. J Chem Phys 139:064705
M. H. Köhler et al.
90. Li N, Chen J, Shi Y-P (2019) Magnetic polyethyleneimine functionalized reduced graphene
oxide as a novel magnetic sorbent for the separation of polar non-steroidal anti-inflammatory
drugs in waters. Talanta 191:526–534
91. Tran TV, Nguyen DTC, Le HT, Vo D-VN, Nanda S, Nguyen TD (2020) Optimization, equilibrium, adsorption behavior and role of surface functional groups on graphene oxide-based
nanocomposite towards diclofenac drug. J Environ Sci 93:137–150
92. Ritz B, Zhao Y, Krishnadasan A, Kennedy N, Morgenstern H (2006) Estimated effects of
hydrazine exposure on cancer incidence and mortality in aerospace workers. Epidemiology
2006:154–161
93. Aigner BA, Darsow U, Grosber M, Ring J, Plötz SG (2010) Multiple basal cell carcinomas
after long-term exposure to hydrazine: case report and review of the literature. Dermatology
221:300–302
94. Xu X, Pereira LFC, Wang Y, Wu J, Zhang K, Zhao X, Bae S, Bui CT, Xie R, Thong BH,
Loh KP, Donadio D, Li B, Özyilmaz B (2014) Length-dependent thermal conductivity in
suspended single-layer graphene. Nat Commun 5:3689
95. Crook C, Bauer J, Izard AG, de Oliveira CS, de Souza e Silva JM, Berger JB, Valdevit L (2020)
Plate-nanolattices at the theoretical limit of stiffness and strength. Nat Commun 11:1579
96. Perilla JR, Schulten K (2017) Physical properties of the HIV-1 capsid from all-atom molecular
dynamics simulations. Nat Commun 8:15959
97. Brenner DW, Shenderova OA, Harrison JA, Stuart SJ, Ni B, Sinnott SB (2002) A
second-generation Reactive Empirical Bond Order (REBO) potential energy expression for
hydrocarbons. J Phys: Condens Matter 14:783–802
98. Yeo J, Jung GS, Mart´ ın-Mart´ ınez FJ, Beem J, Qin Z, Buehler MJ (2019) Multiscale
design of graphyne-based materials for high-performance separation membranes. Adv Mater
31:1805665
99. Srinivasan SG, van Duin ACT, Ganesh P (2015) Development of a ReaxFF potential for
carbon condensed phases and its application to the thermal fragmentation of a large fullerene.
J Phys Chem A 119:571–580
100. Lee J-U, Yoon D, Cheong H (2012) Estimation of young’s modulus of graphene by Raman
spectroscopy. Nano Lett 12:4444–4448
101. Paci JT, Belytschko T, Schatz GC (2007) Computational studies of the structure, behavior
upon heating, and mechanical properties of graphite oxide. J Phys Chem C 111:18099–18111
102. Gómez-Navarro C, Meyer JC, Sundaram RS, Chuvilin A, Kurasch S, Burghard M, Kern K,
Kaiser U (2010) Atomic structure of reduced graphene oxide. Nano Lett 10:1144–1148
103. Suk ME, Aluru NR (2010) Water transport through ultrathin graphene. J Phys Chem Lett
1:1590–1594
104. Cohen-Tanugi D, Grossman JC (2012) Water desalination across nanoporous graphene. Nano
Lett 12:3602–3608
105. Cho KM, Lee H-J, Nam YT, Kim Y-J, Kim C, Kang KM, Ruiz Torres CA, Kim DW, Jung H-T
(2019) Ultrafast-selective nanofiltration of an hybrid membrane comprising laminated reduced
graphene oxide/Graphene oxide nanoribbons. ACS Appl Mater Interf 11:27004–27010
106. Wei N, Peng X, Xu Z (2014) Understanding water permeation in graphene oxide membranes.
ACS Appl Mater Interf 6:5877–5883
107. Falk K, Sedlmeier F, Joly L, Netz RR, Bocquet L (2010) Molecular origin of fast water
transport in carbon nanotube membranes: superlubricity versus curvature dependent friction.
Nano Lett 10:4067–4073
108. Chen B, Jiang H, Liu X, Hu X (2017) Molecular insight into water desalination across
multilayer graphene oxide membranes. ACS Appl Mater Interfaces 9:22826–22836
109. Qiu H, Xue M, Shen C, Zhang Z, Guo W (2019) Graphynes for water desalination and gas
separation. Adv Mater 31:1803772
110. Köhler MH, Bordin JR, Barbosa MC (2019) Ion flocculation in water: from bulk to nanoporous
membrane desalination. J Mol Liq 277:516–521
111. Kou J, Zhou X, Chen Y, Lu H, Wu F, Fan J (2013) Water permeation through single-layer
graphyne membrane. J Chem Phys 139:064705
