Three-Dimensional and Lamellar Graphene Oxide Membranes …
107
30. Pei S, Wei Q, Huang K, Cheng H-M, Ren W (2018) Green synthesis of graphene oxide by
seconds timescale water electrolytic oxidation. Nat Commun 9:145
31. Lyu J, Wen X, Kumar U, You Y, Chen V, Joshi RK (2018) Separation and Purification Using
GO and r-GO Membranes. RSC Adv 8:23130–23151
32. Thakur S, Karak N (2015) Alternative methods and nature-based reagents for the reduction
of graphene oxide: a review. Carbon 94:224–242
33. Erickson K, Erni R, Lee Z, Alem N, Gannett W, Zettl A (2010) Determination of the local
chemical structure of graphene oxide and reduced graphene oxide. Adv Mater 22:4467–4472
34. Banhart F, Kotakoski J, Krasheninnikov AV (2011) Structural defects in graphene. ACS Nano
5:26–41
35. Yousefi N, Lu X, Elimelech M, Tufenkji N (2019) Environmental performance of graphenebased 3D macrostructures. Nat Nanotech 14:107–119
36. Zhu Y, Ji H, Cheng H-M, Ruoff RS (2017) Mass production and industrial applications of
graphene materials. Natl Sci Rev 5:90–101
37. Sun M, Li J (2018) Graphene oxide membranes: functional structures, preparation and
environmental applications. Nano Today 20:121–137
38. Li H, Song Z, Zhang X, Huang Y, Li S, Mao Y, Ploehn HJ, Bao Y, Yu M (2013) Ultrathin, molecular-sieving graphene oxide membranes for selective hydrogen separation. Science
342:95–98
39. Tsou C-H, An Q-F, Lo S-C, Guzman MD, Hung W-S, Hu C-C, Lee K-R, Lai J-Y (2015) Effect
of microstructure of graphene oxide fabricated through different self-assembly techniques on
1-butanol dehydration. J Membr Sci 477:93–100
40. Liu G, Jin W (2019) Chapter 2: Graphene-based membranes. In: Graphene-based membranes
for mass transport applications. The Royal Society of Chemistry, pp 14–42
41. Guan K, Zhao D, Zhang M, Shen J, Zhou G, Liu G, Jin W (2017) 3D nanoporous crystals
enabled 2D channels in graphene membrane with enhanced water purification performance.
J Membr Sci 542:41–51
42. Hu M, Mi B (2014) Layer-by-layer assembly of graphene oxide membranes via electrostatic
interaction. J Membr Sci 469:80–87
43. Zhu H, Sun P (eds) (2019) Graphene-based membranes for mass transport applications. The
Royal Society of Chemistry
44. Thebo KH, Qian X, Zhang Q, Chen L, Cheng H-M, Ren W (2018) Highly stable grapheneoxide-based membranes with superior permeability. Nat Commun 9:1486
45. Yu H, He Y, Xiao G, Fan Y, Ma J, Gao Y, Hou R, Yin X, Wang Y, Mei X (2020) The
roles of oxygen-containing functional groups in modulating water purification performance
of graphene oxide-based membrane. Chem Eng J 389:
46. Yang E, Ham M-H, Park HB, Kim C-M, Song J, Kim IS (2018) Tunable semi-permeability of
graphene-based membranes by adjusting reduction degree of laminar graphene oxide layer. J
Membr Sci 547:73–79
47. Kumar S, Garg A, Chowdhuri A (2019) Sonication effect on graphene oxide (GO) membranes
for water purification applications. Mater Res Express 6:085620
48. Buelke C, Alshami A, Casler J, Lin Y, Hickner M, Aljundi IH (2019) Evaluating graphene
oxide and holey graphene oxide membrane performance for water purification. J Membr Sci
588:
49. Dong L, Fan W, Tong X, Zhang H, Chen M, Zhao Y (2018) A CO 2 -responsive graphene
oxide/polymer composite nanofiltration membrane for water purification. J Mater Chem A
6:6785–6791
50. Kim C-M, Hong S, Li R, Kim IS, Wang P (2019) Janus graphene oxide-doped, lamellar
composite membranes with strong aqueous stability. ACS Sustain Chem Eng 7:7252–7259
51. Ran J, Pan T, Wu Y, Chu C, Cui P, Zhang P, Ai X, Fu C-F, Yang Z, Xu T (2019) Endowing
g-C 3 N 4 membranes with superior permeability and stability by using acid spacers. Angew
Chem Int Ed 58:16463–16468
52. Wu Z, Gao L, Wang J, Zhao F, Fan L, Hua D, Japip S, Xiao J, Zhang X, Zhou S-F, Zhan
G (2020) Preparation of glycine mediated graphene oxide/g-C 3 N 4 lamellar membranes for
nanofiltration. J Membr Sci 601:
107
30. Pei S, Wei Q, Huang K, Cheng H-M, Ren W (2018) Green synthesis of graphene oxide by
seconds timescale water electrolytic oxidation. Nat Commun 9:145
31. Lyu J, Wen X, Kumar U, You Y, Chen V, Joshi RK (2018) Separation and Purification Using
GO and r-GO Membranes. RSC Adv 8:23130–23151
32. Thakur S, Karak N (2015) Alternative methods and nature-based reagents for the reduction
of graphene oxide: a review. Carbon 94:224–242
33. Erickson K, Erni R, Lee Z, Alem N, Gannett W, Zettl A (2010) Determination of the local
chemical structure of graphene oxide and reduced graphene oxide. Adv Mater 22:4467–4472
34. Banhart F, Kotakoski J, Krasheninnikov AV (2011) Structural defects in graphene. ACS Nano
5:26–41
35. Yousefi N, Lu X, Elimelech M, Tufenkji N (2019) Environmental performance of graphenebased 3D macrostructures. Nat Nanotech 14:107–119
36. Zhu Y, Ji H, Cheng H-M, Ruoff RS (2017) Mass production and industrial applications of
graphene materials. Natl Sci Rev 5:90–101
37. Sun M, Li J (2018) Graphene oxide membranes: functional structures, preparation and
environmental applications. Nano Today 20:121–137
38. Li H, Song Z, Zhang X, Huang Y, Li S, Mao Y, Ploehn HJ, Bao Y, Yu M (2013) Ultrathin, molecular-sieving graphene oxide membranes for selective hydrogen separation. Science
342:95–98
39. Tsou C-H, An Q-F, Lo S-C, Guzman MD, Hung W-S, Hu C-C, Lee K-R, Lai J-Y (2015) Effect
of microstructure of graphene oxide fabricated through different self-assembly techniques on
1-butanol dehydration. J Membr Sci 477:93–100
40. Liu G, Jin W (2019) Chapter 2: Graphene-based membranes. In: Graphene-based membranes
for mass transport applications. The Royal Society of Chemistry, pp 14–42
41. Guan K, Zhao D, Zhang M, Shen J, Zhou G, Liu G, Jin W (2017) 3D nanoporous crystals
enabled 2D channels in graphene membrane with enhanced water purification performance.
J Membr Sci 542:41–51
42. Hu M, Mi B (2014) Layer-by-layer assembly of graphene oxide membranes via electrostatic
interaction. J Membr Sci 469:80–87
43. Zhu H, Sun P (eds) (2019) Graphene-based membranes for mass transport applications. The
Royal Society of Chemistry
44. Thebo KH, Qian X, Zhang Q, Chen L, Cheng H-M, Ren W (2018) Highly stable grapheneoxide-based membranes with superior permeability. Nat Commun 9:1486
45. Yu H, He Y, Xiao G, Fan Y, Ma J, Gao Y, Hou R, Yin X, Wang Y, Mei X (2020) The
roles of oxygen-containing functional groups in modulating water purification performance
of graphene oxide-based membrane. Chem Eng J 389:
46. Yang E, Ham M-H, Park HB, Kim C-M, Song J, Kim IS (2018) Tunable semi-permeability of
graphene-based membranes by adjusting reduction degree of laminar graphene oxide layer. J
Membr Sci 547:73–79
47. Kumar S, Garg A, Chowdhuri A (2019) Sonication effect on graphene oxide (GO) membranes
for water purification applications. Mater Res Express 6:085620
48. Buelke C, Alshami A, Casler J, Lin Y, Hickner M, Aljundi IH (2019) Evaluating graphene
oxide and holey graphene oxide membrane performance for water purification. J Membr Sci
588:
49. Dong L, Fan W, Tong X, Zhang H, Chen M, Zhao Y (2018) A CO 2 -responsive graphene
oxide/polymer composite nanofiltration membrane for water purification. J Mater Chem A
6:6785–6791
50. Kim C-M, Hong S, Li R, Kim IS, Wang P (2019) Janus graphene oxide-doped, lamellar
composite membranes with strong aqueous stability. ACS Sustain Chem Eng 7:7252–7259
51. Ran J, Pan T, Wu Y, Chu C, Cui P, Zhang P, Ai X, Fu C-F, Yang Z, Xu T (2019) Endowing
g-C 3 N 4 membranes with superior permeability and stability by using acid spacers. Angew
Chem Int Ed 58:16463–16468
52. Wu Z, Gao L, Wang J, Zhao F, Fan L, Hua D, Japip S, Xiao J, Zhang X, Zhou S-F, Zhan
G (2020) Preparation of glycine mediated graphene oxide/g-C 3 N 4 lamellar membranes for
nanofiltration. J Membr Sci 601:
