Soy protein isolate/kappa-carrageenan/cellulose nanofibrils composite film incorporated with zenian essential oil-loaded MOFs for food packaging.
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Marjan Ghorbani | A. Fallah | Leila Yavari Maroufi | N. Shahabi | Elham Mahmoudi | Mastafa H. Al-Musawi
[1] Marjan Ghorbani,et al. Investigating functional properties of halloysite nanotubes and propolis used in reinforced composite film based on soy protein/basil seed gum for food packaging application. , 2023, International journal of biological macromolecules.
[2] Marjan Ghorbani,et al. Preparation and physicochemical evaluation of casein/basil seed gum film integrated with guar gum/gelatin based nanogel containing lemon peel essential oil for active food packaging application. , 2022, International journal of biological macromolecules.
[3] Hang Yang,et al. In Situ Growth of Zeolitic Imidazolate Framework-L in Macroporous PVA/CMC/PEG Composite Hydrogels with Synergistic Antibacterial and Rapid Hemostatic Functions for Wound Dressing , 2022, Gels.
[4] Y. Wen,et al. Electrospun pullulan/PVA nanofibers integrated with thymol-loaded porphyrin metal-organic framework for antibacterial food packaging. , 2021, Carbohydrate polymers.
[5] S. Kaya,et al. Characterization and application of novel composite films based on soy protein isolate and sunflower oil produced using freeze drying method. , 2021, Food chemistry.
[6] Mahnaz Tabibiazar,et al. Fabrication and characterization of novel antibacterial chitosan/dialdehyde guar gum hydrogels containing pomegranate peel extract for active food packaging application. , 2021, International journal of biological macromolecules.
[7] Mahnaz Tabibiazar,et al. Advanced properties of gelatin film by incorporating modified kappa-carrageenan and zein nanoparticles for active food packaging. , 2021, International journal of biological macromolecules.
[8] Masoud Aman Mohammadi,et al. Electrospun Antibacterial and Antioxidant Zein/Polylactic Acid/Hydroxypropyl Methylcellulose Nanofibers as an Active Food Packaging System , 2021, Food and Bioprocess Technology.
[9] Fangyu Fan,et al. Preparation and Properties of Soy Protein Isolate/Cotton-Nanocrystalline Cellulose Films , 2021, International Journal of Polymer Science.
[10] Xun Zhang,et al. High-barrier, strong, and antibacterial paper fabricated by coating acetylated cellulose and cinnamaldehyde for food packaging , 2021, Cellulose.
[11] H. Siesler,et al. Characterization of bio-nanocomposite films based on gelatin/polyvinyl alcohol blend reinforced with bacterial cellulose nanowhiskers for food packaging applications , 2020 .
[12] Jiankang Cao,et al. Improving the performance of edible food packaging films by using nanocellulose as an additive. , 2020, International journal of biological macromolecules.
[13] Yingnan Liu,et al. Development and evaluation of soy protein isolate-based antibacterial nanocomposite films containing cellulose nanocrystals and zinc oxide nanoparticles , 2020 .
[14] Mahnaz Tabibiazar,et al. A Gelatin-Based Film Reinforced by Covalent Interaction with Oxidized Guar Gum Containing Green Tea Extract as an Active Food Packaging System , 2020, Food and Bioprocess Technology.
[15] A. Wijaya,et al. Preliminary Study on The Development of Preconcentration Method of Cu(II), Co(II), Ni(II), and Cr(III) Ions in Water Samples Using Nanomagnetite Coated by Carboxymethyl kappa-Carrageenan (CMKC) , 2020, IOP Conference Series: Materials Science and Engineering.
[16] M. El-Sakhawy,et al. Polysaccharides, Protein and Lipid -Based Natural Edible Films in Food Packaging: A Review. , 2020, Carbohydrate polymers.
[17] B. Nikzad,et al. Development of reinforced aldehyde-modified kappa-carrageenan/gelatin film by incorporation of halloysite nanotubes for biomedical applications. , 2020, International journal of biological macromolecules.
[18] Weili Xu,et al. Enhanced antibacterial performance of gelatin/chitosan film containing capsaicin loaded MOFs for food packaging , 2020 .
[19] K. Kamiński,et al. Hydrogel bacterial cellulose: a path to improved materials for new eco-friendly textiles , 2020, Cellulose.
[20] H. Jin,et al. Chemical and physical reinforcement behavior of dialdehyde nanocellulose in PVA composite film: A comparison of nanofiber and nanocrystal. , 2020, Carbohydrate polymers.
[21] Xiaoquan Yang,et al. Nanocomposites of Bacterial Cellulose Nanofibrils and Zein Nanoparticles for Food Packaging , 2020 .
[22] Xingbin Yang,et al. Characterizations of bacterial cellulose nanofibers reinforced edible films based on konjac glucomannan. , 2019, International journal of biological macromolecules.
[23] M. A. Mauro,et al. Effects of interactions between soy protein isolate and pectin on properties of soy protein‐based films , 2019 .
[24] Xiangxin Li,et al. Development of antioxidant chitosan film with banana peels extract and its application as coating in maintaining the storage quality of apple. , 2019, International journal of biological macromolecules.
[25] F. H. Abdellatif,et al. Bio-based i-carrageenan aerogels as efficient adsorbents for heavy metal ions and acid dye from aqueous solution , 2019, Cellulose.
[26] J. Rhim,et al. Effect of melanin nanoparticles on the mechanical, water vapor barrier, and antioxidant properties of gelatin-based films for food packaging application , 2019, Food Packaging and Shelf Life.
[27] Cai Zhijiang,et al. Soy protein nanoparticles modified bacterial cellulose electrospun nanofiber membrane scaffold by ultrasound-induced self-assembly technique: characterization and cytocompatibility , 2019, Cellulose.
[28] A. Athanassiou,et al. Low-density polyethylene/curcumin melt extruded composites with enhanced water vapor barrier and antioxidant properties for active food packaging , 2019, Polymer.
[29] Agustín González,et al. Preparation and characterization of soy protein films reinforced with cellulose nanofibers obtained from soybean by-products , 2019, Food Hydrocolloids.
[30] Li Wang,et al. Construction of Bi2WO6–TiO2/starch nanocomposite films for visible-light catalytic degradation of ethylene , 2019, Food Hydrocolloids.
[31] Shufen Zhang,et al. Enhanced mechanical, thermal, and UV-shielding properties of poly(vinyl alcohol)/metal–organic framework nanocomposites , 2018, RSC advances.
[32] H. Kafil,et al. Development and evaluation of chitosan based active nanocomposite films containing bacterial cellulose nanocrystals and silver nanoparticles , 2018, Food Hydrocolloids.
[33] M. Kazemi,et al. Bacterial cellulose nanofibers as reinforce in edible fish myofibrillar protein nanocomposite films. , 2018, International journal of biological macromolecules.
[34] E. Biazar,et al. Preparation and characterization of starch-based composite films reinforced by cellulose nanofibers. , 2018, International journal of biological macromolecules.
[35] Shaobin Wang,et al. Biodegradable κ-carrageenan/nanoclay nanocomposite films containing Rosmarinus officinalis L. extract for improved strength and antibacterial performance. , 2018, International journal of biological macromolecules.
[36] Lijuan Wang,et al. Soy protein isolate nanocomposites reinforced with nanocellulose isolated from licorice residue: Water sensitivity and mechanical strength , 2018, Industrial Crops and Products.
[37] Jianping Qian,et al. Food Packaging: A Comprehensive Review and Future Trends. , 2018, Comprehensive reviews in food science and food safety.
[38] Yongyong Zhang,et al. Influence of the 2-methylimidazole/zinc nitrate hexahydrate molar ratio on the synthesis of zeolitic imidazolate framework-8 crystals at room temperature , 2018, Scientific Reports.
[39] M. Snoussi,et al. Antioxidant properties and anti-quorum sensing potential of Carum copticum essential oil and phenolics against Chromobacterium violaceum , 2018, Journal of Food Science and Technology.
[40] M. Yar,et al. Biocompatibility Through Cell Attachment and Cell Proliferation Studies of Nylon 6/Chitosan/Ha Electrospun Mats , 2018, Journal of Polymers and the Environment.
[41] R. Sothornvit,et al. Active Banana Flour Nanocomposite Films Incorporated with Garlic Essential Oil as Multifunctional Packaging Material for Food Application , 2018, Food and Bioprocess Technology.
[42] C. Nicolae,et al. Surface properties, thermal, and mechanical characteristics of poly(vinyl alcohol)–starch‐bacterial cellulose composite films , 2018 .
[43] Lijuan Wang,et al. Preparation and characterization of antioxidant soy protein isolate films incorporating licorice residue extract , 2018 .
[44] A. Mustapha,et al. Soy protein-based films incorporated with cellulose nanocrystals and pine needle extract for active packaging , 2018 .
[45] Yuezhi Cui,et al. New starch ester/gelatin based films: Developed and physicochemical characterization. , 2017, International journal of biological macromolecules.
[46] Qiang Yang,et al. Surface modification of PCC filled cellulose paper by MOF-5 (Zn3(BDC)2) metal–organic frameworks for use as soft gas adsorption composite materials , 2017, Cellulose.
[47] Yiqi Yang,et al. Rheological properties of soy protein isolate solution for fibers and films , 2017 .
[48] Lianqiang Wu,et al. Physical Characterization and Pork Packaging Application of Chitosan Films Incorporated with Combined Essential Oils of Cinnamon and Ginger , 2017, Food and Bioprocess Technology.
[49] Navpreet Kaur,et al. Conducting polymer and multi-walled carbon nanotubes nanocomposites based amperometric biosensor for detection of organophosphate , 2016 .
[50] P. Chitprasert,et al. Encapsulation of Holy Basil Essential Oil in Gelatin: Effects of Palmitic Acid in Carboxymethyl Cellulose Emulsion Coating on Antioxidant and Antimicrobial Activities , 2016, Food and Bioprocess Technology.
[51] Xiaomin Liu,et al. Preparation, physical, and mechanical properties of soy protein isolate/guar gum composite films prepared by solution casting , 2016 .
[52] A. Khaneghah,et al. Essential Oil Composition and Antioxidant Capacity of Carum copticum and its Antibacterial Effect on Staphylococcus aureus, Enterococcus faecalis and Escherichia coli O157:H7 , 2016 .
[53] S. Ribeiro,et al. Synthesis and Characterization of Methylcellulose Produced from Bacterial Cellulose under Heterogeneous Condition , 2015 .
[54] Z. Cai,et al. Self-assembled optically transparent cellulose nanofibril films: effect of nanofibril morphology and drying procedure , 2015, Cellulose.
[55] Morsyleide de Freitas Rosa,et al. Fish gelatin films as affected by cellulose whiskers and sonication , 2014 .
[56] Changdao Mu,et al. Periodate oxidation of xanthan gum and its crosslinking effects on gelatin-based edible films , 2014 .
[57] Amparo López-Rubio,et al. Nanostructured biolayers in food packaging , 2013 .
[58] G. A. Evingür,et al. Superelastic percolation network of polyacrylamide (PAAm)–kappa carrageenan (κC) composite , 2013, Cellulose.
[59] G. Kavoosi,et al. Evaluation of antioxidant and antimicrobial activities of essential oils from Carum copticum seed and Ferula assafoetida latex. , 2013, Journal of food science.
[60] Changdao Mu,et al. Preparation and properties of dialdehyde carboxymethyl cellulose crosslinked gelatin edible films , 2012 .
[61] M. Moradi,et al. Characterization of antioxidant chitosan film incorporated with Zataria multiflora Boiss essential oil and grape seed extract , 2012 .
[62] S. Rohani,et al. In situ high pressure study of ZIF-8 by FTIR spectroscopy. , 2011, Chemical communications.
[63] W. Orts,et al. HPMC reinforced with different cellulose nano-particles , 2011 .
[64] Bruce Harte,et al. Physical properties and antioxidant activity of an active film from chitosan incorporated with green tea extract , 2010 .
[65] K. Koutsoumanis,et al. Thermal, mechanical and water vapor barrier properties of sodium caseinate films containing antimicrobials and their inhibitory action on Listeria monocytogenes , 2008 .
[66] Long Yu,et al. Polymer blends and composites from renewable resources , 2006 .
[67] A. C. Seydim,et al. Antimicrobial activity of whey protein based edible films incorporated with oregano, rosemary and garlic essential oils [Erratum: 2007 Aug., v. 40, issue 7, p. 949.] , 2006 .
[68] F. Debeaufort,et al. Edible films and coatings: tomorrow's packagings: a review. , 1998, Critical reviews in food science and nutrition.
[69] Chemical Composition, Essential Oil Characterization and Antimicrobial Activity of Carum copticum , 2016 .
[70] Y. Ghasemi,et al. Possible Application and Chemical Compositions of Carum copticum Essential Oils Against Food borne and Nosocomial Pathogens , 2011 .