Page 506 - Polymer-based Nanocomposites for Energy and Environmental Applications
P. 506
Interplay of polymer bionanocomposites and significance of ionic liquids for heavy metal removal 459
[15] Chaturvedi S, Dave PN, Shah N. Applications of nano-catalyst in new era. J Saudi Chem
Soc 2012;16:307–25.
[16] Saito T, Isogai A. Ion-exchange behavior of carboxylate groups in fibrous cellulose oxi-
dized by the TEMPO-mediated system. Carbohydr Polym 2005;61:183–90.
[17] Ali I. New generation adsorbents for water treatment. Chem Rev 2012;112:5073–91.
[18] Rajendran A, Ragupathy D, Priyadarshini M, Magesh A, Jaishankar P, Madhavan NS,
et al. Effective extraction of heavy metals from their effluents using some potential ionic
liquids as green chemicals. E-J Chem 2011;8:697–702.
[19] Visser AE, Swatloski RP, Reichert WM, Mayton R, Sheff S, Wierzbicki A, et al. Task-
specific ionic liquids incorporating novel cations for the coordination and extraction of
Hg2+ and Cd2+: synthesis, characterization, and extraction studies. Environ Sci Technol
2002;36:2523–9.
[20] Volesky B. Biosorption and me. Water Res 2007;41:4017–29.
[21] Vijayaraghavan K, Yun Y-S. Bacterial biosorbents and biosorption. Biotechnol Adv
2008;26:266–91.
[22] Wang J, Chen C. Biosorbents for heavy metals removal and their future. Biotechnol Adv
2009;27:195–226.
[23] Tsezos M. Biosorption of metals. The experience accumulated and the outlook for tech-
nology development. Hydrometallurgy 2001;59:241–3.
ˇ
[24] Sturcova ´ A, Davies GR, Eichhorn SJ. Elastic modulus and stress-transfer properties of
tunicate cellulose whiskers. Biomacromolecules 2005;6:1055–61.
[25] Srivastava K, Kardam A, Raj KR. Nanotech reinforcement onto cellulose fibers: green
remediation of toxic metals. Int J Green Nanotechnol 2012;4:46–53.
[26] Ma H, Hsiao BS, Chu B. Ultrafine cellulose nanofibers as efficient adsorbents for removal
2+
of UO 2 in water. ACS Macro Lett 2012;1:213–6.
[27] Ma H, Burger C, Hsiao BS, Chu B. Nanofibrous microfiltration membrane based on cel-
lulose nanowhiskers. Biomacromolecules 2012;13:180–6.
[28] Zhang Z, Se `be G, Rentsch D, Zimmermann T, Tingaut P. Ultralightweight and flexible
silylated nanocellulose sponges for the selective removal of oil from water. Chem Mater
2014;26:2659–68.
[29] Carpenter AW, de Lannoy C-F, Wiesner MR. Cellulose nanomaterials in water treatment
technologies. Environ Sci Technol 2015;49:5277–87.
[30] Karim Z, Mathew AP, Grahn M, Mouzon J, Oksman K. Nanoporous membranes with
cellulose nanocrystals as functional entity in chitosan: removal of dyes from water.
Carbohydr Polym 2014;112:668–76.
[31] Bondeson D, Mathew A, Oksman K. Optimization of the isolation of nanocrystals from
microcrystalline cellulose by acid hydrolysis. Cellulose 2006;13:171–80.
[32] Jonoobi M, Mathew AP, Oksman K. Producing low-cost cellulose nanofiber from sludge
as new source of raw materials. Ind Crop Prod 2012;40:232–8.
[33] Mathew AP, Oksman K, Karim Z, Liu P, Khan SA, Naseri N. Process scale up and char-
acterization of wood cellulose nanocrystals hydrolysed using bioethanol pilot plant. Ind
Crop Prod 2014;58:212–9.
[34] Oksman K, Etang JA, Mathew AP, Jonoobi M. Cellulose nanowhiskers separated from a
bio-residue from wood bioethanol production. Biomass Bioenergy 2011;35:146–52.
[35] Gopalan Nair K, Dufresne A. Crab shell chitin whisker reinforced natural rubber
nanocomposites. 1. Processing and swelling behavior. Biomacromolecules 2003;
4:657–65.
[36] Saito SKT, Nishiyama Y, Isogai A. Cellulose nanofibers prepared by TEMPO-mediated
oxidation of native cellulose. Biomacromolecules 2007;8:2485–91.

