Bacterial cellulose-assisted de-lignified wheat straw-PVA based bio-composites with novel characteristics.
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[1] S. Capareda,et al. Ligninolytic enzymes: a biotechnological alternative for bioethanol production , 2015, Bioresources and Bioprocessing.
[2] Luis Reis,et al. Ecodesign of automotive components making use of natural jute fiber composites , 2010 .
[3] Hafiz M.N. Iqbal,et al. Advances in the Valorization of Lignocellulosic Materials by Biotechnology: An Overview , 2013 .
[4] V. Sinha,et al. Graft copolymerization of 2-hydroxyethylmethacrylate onto carboxymethyl chitosan using CAN as an initiator , 2006 .
[5] T. Dobre,et al. Use of Bacterial Cellulose as Reinforcement Agent and as Coating Agent in Drug Release Applications , 2014 .
[6] Yimeng Kong,et al. Genotyping of amino acid-producing Corynebacterium glutamicum strains based on multi-locus sequence typing (MLST) scheme , 2015, Bioresources and Bioprocessing.
[7] Héctor A. Ruiz,et al. Development and Characterization of an Environmentally Friendly Process Sequence (Autohydrolysis and Organosolv) for Wheat Straw Delignification , 2011, Applied biochemistry and biotechnology.
[8] H. Kaczmarek,et al. Characterisation of Composites of Bacterial Cellulose and Poly(vinyl alcohol) Obtained by Different Methods , 2014 .
[9] Yixiang Wang,et al. Impacts of nanowhisker on formation kinetics and properties of all-cellulose composite gels , 2011 .
[10] Hafiz M.N. Iqbal,et al. Laccase-assisted grafting of poly(3-hydroxybutyrate) onto the bacterial cellulose as backbone polymer: development and characterisation. , 2014, Carbohydrate polymers.
[11] Z. Ahmad,et al. A Novel Approach to Delignify Lignocellulosic Materials by Using Ligninolytic Enzyme Consortium , 2016 .
[12] G. Christie,et al. Preparation, surface modification and characterisation of solution cast starch PVA blended films , 2004 .
[13] Thomas Lampke,et al. Surface characterization of flax, hemp and cellulose fibers; Surface properties and the water uptake behavior , 2002 .
[14] A. Kulma,et al. Manipulating cinnamyl alcohol dehydrogenase (CAD) expression in flax affects fibre composition and properties , 2014, BMC Plant Biology.
[15] Hafiz M.N. Iqbal,et al. Optimization of physical and nutritional factors for synthesis of lignin degrading enzymes by a novel strain of Trametes vericolor , 2011, BioResources.
[16] O. Carneiro,et al. Rheological Behavior of (Short) Carbon Fiber/ Thermoplastic Composites. Part I: The Influence of Fiber Type, Processing Conditions and Level of Incorporation , 2000 .
[17] Hafiz M.N. Iqbal,et al. Recent trends and valorization of immobilization strategies and ligninolytic enzymes by industrial biotechnology , 2014 .
[18] Hafiz M.N. Iqbal,et al. Bacterial Cellulose: A Sustainable Source to Develop Value-Added Products – A Review , 2016 .
[19] Hafiz M.N. Iqbal,et al. Development of bio-composites with novel characteristics through enzymatic grafting , 2015 .
[20] Hafiz M.N. Iqbal,et al. Laccase‐Assisted Approach to Graft Multifunctional Materials of Interest: Keratin‐EC Based Novel Composites and their Characterisation , 2015 .
[21] K. Oksman,et al. Fibrous cellulose nanocomposite scaffolds prepared by partial dissolution for potential use as ligament or tendon substitutes , 2012 .
[22] C. Hill,et al. Silane coupling agents used for natural fiber/polymer composites: A review , 2010 .
[23] Mirjana Stajić,et al. Lignin degradation by selected fungal species. , 2013, Bioresource technology.
[24] J. Silva,et al. Production and Characterization of a New Bacterial Cellulose/Poly(Vinyl Alcohol) Nanocomposite , 2013, Materials.
[25] D. S. Arora,et al. Involvement of lignin peroxidase, manganese peroxidase and laccase in degradation and selective ligninolysis of wheat straw , 2002 .
[26] P. Chang,et al. Properties of biodegradable citric acid-modified granular starch/thermoplastic pea starch composites. , 2009 .
[27] V. Thakur,et al. Study of mechanical properties of urea-formaldehyde thermosets reinforced by pine needle powder , 2009, BioResources.
[28] Mohamad Ridzwan Ishak,et al. Impregnation modification of sugar palm fibres with phenol formaldehyde and unsaturated polyester , 2013, Fibers and Polymers.
[29] Ton Peijs,et al. All-cellulose nanocomposites by surface selective dissolution of bacterial cellulose , 2009 .
[30] B. Yogesha,et al. Applications of Natural Fibers and Its Composites: An Overview , 2016 .
[31] L. Léger,et al. Effect of plasticizers (water and glycerol) on the diffusion of a small molecule in iota-carrageenan biopolymer films for edible coating application. , 2006, Biomacromolecules.
[32] J. Lee,et al. Critical factors on manufacturing processes of natural fibre composites , 2012 .
[33] Indriyati,et al. Development of Nanocomposites from Bacterial Cellulose and Poly(vinyl Alcohol) using Casting-drying Method , 2012 .
[34] S. Razavi,et al. Characterisation of a new biodegradable edible film based on sage seed gum: Influence of plasticiser type and concentration , 2015 .
[35] K. Oksman,et al. Novel nanocomposites based on polyurethane and micro fibrillated cellulose , 2008 .
[36] R. Singhal,et al. Microbial Cellulose: Fermentative Production and Applications , 2009 .
[37] M. Tien,et al. Lignin peroxidase of Phanerochaete chrysosporium , 1988 .
[38] K. Pickering,et al. A review of recent developments in natural fibre composites and their mechanical performance , 2016 .
[39] A. Netravali,et al. Bacterial cellulose-based membrane-like biodegradable composites using cross-linked and noncross-linked polyvinyl alcohol , 2012, Journal of Materials Science.
[40] L. Herrera-Estrella,et al. An improved, low-cost, hydroponic system for growing Arabidopsis and other plant species under aseptic conditions , 2014, BMC Plant Biology.
[41] K. Wilson,et al. Surface modification of natural fibers using bacteria: depositing bacterial cellulose onto natural fibers to create hierarchical fiber reinforced nanocomposites. , 2008, Biomacromolecules.