Mascheroni E, Rampazzo R, Ortenzi MA, Piva G, Bonetti S, Piergiovanni L (2016) Comparison of
cellulose nanocrystals obtained by sulfuric acid hydrolysis and ammonium persulfate, to be used
as coating on flexible food-packaging materials. Cellul 23(1):779–793
Metreveli G, Wågberg L, Emmoth E, Belák S, Strømme M, Mihranyan A (2014) A size-exclusion
nanocellulose filter paper for virus removal. Adv Healthc Mater 3(10):1546–1550
Miao J, Yu Y, Jiang Z, Zhang L (2016) One-pot preparation of hydrophobic cellulose nanocrystals
in an ionic liquid. Cellul 23(2):1209–1219
Michelin M, Gomes DG, Romaní A, Polizeli MDL, Teixeira JA (2020) Nanocellulose production:
exploring the enzymatic route and residues of pulp and paper industry. Molecules 25(15):3411
Mo L, Pang H, Tan Y, Zhang S, Li J (2019) 3D multi-wall perforated nanocellulose-based
polyethylenimine aerogels for ultrahigh efficient and reversible removal of Cu (II) ions from
water. Chem Eng J 378:122157
Mohammed N, Grishkewich N, Waeijen HA, Berry RM, Tam KC (2016) Continuous flow
adsorption of methylene blue by cellulose nanocrystal-alginate hydrogel beads in fixed bed
columns. Carbohydr Polym 136:1194–1202
Mohammed N, Grishkewich N, Tam KC (2018) Cellulose nanomaterials: promising sustainable
nanomaterials for application in water/wastewater treatment processes. Environ Sci Nano 5
(3):623–658
Mokhena TC, John MJ (2020) Cellulose nanomaterials: new generation materials for solving global
issues. Cellul 27(3):1149–1194
Nam J, Jung IB, Kim B, Lee SM, Kim SE, Lee KN, Shin DS (2018) A colorimetric hydrogel
biosensor for rapid detection of nitrite ions. Sens Actuators B 270:112–118
Nishiyama Y (2009) Structure and properties of the cellulose microfibril. J Wood Sci 55
(4):241–249
Nypelö T, Abreu CR, Kolen’ko YV, Rivas J, Rojas OJ (2014) Microbeads and hollow microcapsules obtained by self-assembly of pickering magneto-responsive cellulose nanocrystals. ACS
Appl Mater Interfaces 6:16851–16858
O’sullivan AC (1997) Cellulose: the structure slowly unravels. Cellul 4(3):173–207
Oehme DP, Downton MT, Doblin MS, Wagner J, Gidley MJ, Bacic A (2015) Unique aspects of the
structure and dynamics of elementary Iβ cellulose microfibrils revealed by computational
simulations. Plant Physiol 168(1):3–17
Ogonowski M, Edlund U, Gorokhova E, Linde M, Ek K, Liewenborg B, Könnecke O, Navarro JR,
Breitholtz M (2018) Multi-level toxicity assessment of engineered cellulose nanofibrils in
Daphnia magna. Nanotoxicology 12(6):509–521
Okita Y, Saito T, Isogai A (2010) Entire surface oxidation of various cellulose microfibrils by
TEMPO-mediated oxidation. Biomacromolecules 11(6):1696–1700
Oun AA, Rhim JW (2017) Characterization of carboxymethyl cellulose-based nanocomposite films
reinforced with oxidized nanocellulose isolated using ammonium persulfate method. Carbohydr
Polym 174:484–492
Oun AA, Rhim JW (2018) Isolation of oxidized nanocellulose from rice straw using the ammonium
persulfate method. Cellul 25(4):2143–2149
Patel DK, Dutta SD, Lim KT (2019) Nanocellulose-based polymer hybrids and their emerging
applications in biomedical engineering and water purification. RSC Adv 9(33):19143–19162
Paul M, Jons SD (2016) Chemistry and fabrication of polymeric nanofiltration membranes: a
review. Polymer 103:417–456
Phanthong P, Karnjanakom S, Reubroycharoen P, Hao X, Abudula A, Guan G (2017) A facile
one-step way for extraction of nanocellulose with high yield by ball milling with ionic liquid.
Cellul 24(5):2083–2093
Phanthong P, Reubroycharoen P, Hao X, Xu G, Abudula A, Guan G (2018) Nanocellulose:
extraction and application. Carbon Res Convers 1(1):32–43
Piras CC, Fernández-Prieto S, De Borggraeve WM (2019) Ball milling: a green technology for the
preparation and functionalisation of nanocellulose derivatives. Nanoscale Adv 1(3):937–947
88
E. M. Abda and R. Konwarh
cellulose nanocrystals obtained by sulfuric acid hydrolysis and ammonium persulfate, to be used
as coating on flexible food-packaging materials. Cellul 23(1):779–793
Metreveli G, Wågberg L, Emmoth E, Belák S, Strømme M, Mihranyan A (2014) A size-exclusion
nanocellulose filter paper for virus removal. Adv Healthc Mater 3(10):1546–1550
Miao J, Yu Y, Jiang Z, Zhang L (2016) One-pot preparation of hydrophobic cellulose nanocrystals
in an ionic liquid. Cellul 23(2):1209–1219
Michelin M, Gomes DG, Romaní A, Polizeli MDL, Teixeira JA (2020) Nanocellulose production:
exploring the enzymatic route and residues of pulp and paper industry. Molecules 25(15):3411
Mo L, Pang H, Tan Y, Zhang S, Li J (2019) 3D multi-wall perforated nanocellulose-based
polyethylenimine aerogels for ultrahigh efficient and reversible removal of Cu (II) ions from
water. Chem Eng J 378:122157
Mohammed N, Grishkewich N, Waeijen HA, Berry RM, Tam KC (2016) Continuous flow
adsorption of methylene blue by cellulose nanocrystal-alginate hydrogel beads in fixed bed
columns. Carbohydr Polym 136:1194–1202
Mohammed N, Grishkewich N, Tam KC (2018) Cellulose nanomaterials: promising sustainable
nanomaterials for application in water/wastewater treatment processes. Environ Sci Nano 5
(3):623–658
Mokhena TC, John MJ (2020) Cellulose nanomaterials: new generation materials for solving global
issues. Cellul 27(3):1149–1194
Nam J, Jung IB, Kim B, Lee SM, Kim SE, Lee KN, Shin DS (2018) A colorimetric hydrogel
biosensor for rapid detection of nitrite ions. Sens Actuators B 270:112–118
Nishiyama Y (2009) Structure and properties of the cellulose microfibril. J Wood Sci 55
(4):241–249
Nypelö T, Abreu CR, Kolen’ko YV, Rivas J, Rojas OJ (2014) Microbeads and hollow microcapsules obtained by self-assembly of pickering magneto-responsive cellulose nanocrystals. ACS
Appl Mater Interfaces 6:16851–16858
O’sullivan AC (1997) Cellulose: the structure slowly unravels. Cellul 4(3):173–207
Oehme DP, Downton MT, Doblin MS, Wagner J, Gidley MJ, Bacic A (2015) Unique aspects of the
structure and dynamics of elementary Iβ cellulose microfibrils revealed by computational
simulations. Plant Physiol 168(1):3–17
Ogonowski M, Edlund U, Gorokhova E, Linde M, Ek K, Liewenborg B, Könnecke O, Navarro JR,
Breitholtz M (2018) Multi-level toxicity assessment of engineered cellulose nanofibrils in
Daphnia magna. Nanotoxicology 12(6):509–521
Okita Y, Saito T, Isogai A (2010) Entire surface oxidation of various cellulose microfibrils by
TEMPO-mediated oxidation. Biomacromolecules 11(6):1696–1700
Oun AA, Rhim JW (2017) Characterization of carboxymethyl cellulose-based nanocomposite films
reinforced with oxidized nanocellulose isolated using ammonium persulfate method. Carbohydr
Polym 174:484–492
Oun AA, Rhim JW (2018) Isolation of oxidized nanocellulose from rice straw using the ammonium
persulfate method. Cellul 25(4):2143–2149
Patel DK, Dutta SD, Lim KT (2019) Nanocellulose-based polymer hybrids and their emerging
applications in biomedical engineering and water purification. RSC Adv 9(33):19143–19162
Paul M, Jons SD (2016) Chemistry and fabrication of polymeric nanofiltration membranes: a
review. Polymer 103:417–456
Phanthong P, Karnjanakom S, Reubroycharoen P, Hao X, Abudula A, Guan G (2017) A facile
one-step way for extraction of nanocellulose with high yield by ball milling with ionic liquid.
Cellul 24(5):2083–2093
Phanthong P, Reubroycharoen P, Hao X, Xu G, Abudula A, Guan G (2018) Nanocellulose:
extraction and application. Carbon Res Convers 1(1):32–43
Piras CC, Fernández-Prieto S, De Borggraeve WM (2019) Ball milling: a green technology for the
preparation and functionalisation of nanocellulose derivatives. Nanoscale Adv 1(3):937–947
88
E. M. Abda and R. Konwarh
