Supercritical Carbon Dioxide Isolation of Cellulose Nanofibre

PDF Publication Title:

Supercritical Carbon Dioxide Isolation of Cellulose Nanofibre ( supercritical-carbon-dioxide-isolation-cellulose-nanofibre )

Previous Page View | Next Page View | Return to Search List

Text from PDF Page: 022

Molecules 2021, 26, 5276 22 of 22 48. Yang, W.; Fortunati, E.; Dominici, F.; Giovanale, G.; Mazzaglia, A.; Balestra, G.; Kenny, J.; Puglia, D. Effect of cellulose and lignin on disintegration, antimicrobial and antioxidant properties of PLA active films. Int. J. Biol. Macromol. 2016, 89, 360–368. [CrossRef] 49. Yang, W.; Qi, G.; Kenny, J.M.; Puglia, D.; Ma, P. Effect of cellulose nanocrystals and lignin nanoparticles on mechanical, antioxidant and water vapour barrier properties of glutaraldehyde crosslinked PVA films. Polymers 2020, 12, 1364. [CrossRef] [PubMed] 50. Philippova, O.; Korchagina, E. Chitosan and its hydrophobic derivatives: Preparation and aggregation in dilute aqueous solutions. Polym. Sci. Ser. A 2012, 54, 552–572. [CrossRef] 51. Nasution, H.; Olaiya, N.G.; Haafiz, M.M.; Abdullah, C.; Bakar, S.A.; Olaiya, F.G.; Mohamed, A.; HPS, A.K. The role of amphiphilic chitosan in hybrid nanocellulose–reinforced polylactic acid biocomposite. Polym. Adv. Technol. 2021. [CrossRef] 52. Zhong, T.; Wolcott, M.P.; Liu, H.; Wang, J. Developing chitin nanocrystals for flexible packaging coatings. Carbohydr. Polym. 2019, 226, 115276. [CrossRef] [PubMed] 53. Rizal, S.; Lai, T.K.; Muksin, U.; Olaiya, N.G.; Abdullah, C.; Yahya, E.B.; Chong, E.; Abdul Khalil, H.P.S. Properties of Macroalgae Biopolymer Films Reinforcement with Polysaccharide Microfibre. Polymers 2020, 12, 2554. [CrossRef] 54. Yu, H.-Y.; Zhang, H.; Song, M.-L.; Zhou, Y.; Yao, J.; Ni, Q.-Q. From cellulose nanospheres, nanorods to nanofibers: Various aspect ratio induced nucleation/reinforcing effects on polylactic acid for robust-barrier food packaging. ACS Appl. Mater. Interfaces 2017, 9, 43920–43938. [CrossRef] [PubMed] 55. Ni’mah, H.; Ningrum, E.O.; Sumarno; Rizkiyah, D.N.; Divta, I.G.C.; Meiliefiana; Subaghio, M.A. Effect of particle size and crystallinity of cellulose filler on the properties of poly (L-lactic acid): Mechanical property and thermal stability. In Proceedings of the AIP Conference Proceedings, Santiago, Chile, 26–29 September 2017; AIP Publishing LLC: New York, NY, USA, 2017. 56. Clarkson, C.M.; El Awad Azrak, S.M.; Chowdhury, R.; Shuvo, S.N.; Snyder, J.; Schueneman, G.; Ortalan, V.; Youngblood, J.P. Melt spinning of cellulose nanofibril/polylactic acid (CNF/PLA) composite fibers for high stiffness. ACS Appl. Polym. Mater. 2018, 1, 160–168. [CrossRef] 57. Zamboulis, A.; Nanaki, S.; Michailidou, G.; Koumentakou, I.; Lazaridou, M.; Ainali, N.M.; Xanthopoulou, E.; Bikiaris, D.N. Chitosan and its Derivatives for Ocular Delivery Formulations: Recent Advances and Developments. Polymers 2020, 12, 1519. [CrossRef] [PubMed] 58. Younes, I.; Rinaudo, M. Chitin and chitosan preparation from marine sources. Structure, properties and applications. Mar. Drugs 2015, 13, 1133–1174. [CrossRef] 59. Torres-Hernández, Y.G.; Ortega-Díaz, G.M.; Téllez-Jurado, L.; Castrejón-Jiménez, N.S.; Altamirano-Torres, A.; García-Pérez, B.E.; Balmori-Ramírez, H. Biological compatibility of a polylactic acid composite reinforced with natural chitosan obtained from shrimp waste. Materials 2018, 11, 1465. [CrossRef] 60. dos Santos, F.A.; Iulianelli, G.C.; Tavares, M.I. Effect of microcrystalline and nanocrystals cellulose fillers in materials based on PLA matrix. Polym. Test. 2017, 61, 280–288. [CrossRef] 61. Figueiredo, P.; Lintinen, K.; Hirvonen, J.T.; Kostiainen, M.A.; Santos, H.A. Properties and chemical modifications of lignin: Towards lignin-based nanomaterials for biomedical applications. Prog. Mater. Sci. 2018, 93, 233–269. [CrossRef] 62. Zarina, S.; Ahmad, I. Biodegradable composite films based on κ-carrageenan reinforced by cellulose nanocrystal from kenaf fibers. BioResources 2015, 10, 256–271. [CrossRef] 63. Trifol, J.; Plackett, D.; Sillard, C.; Hassager, O.; Daugaard, A.E.; Bras, J.; Szabo, P. A comparison of partially acetylated nanocellulose, nanocrystalline cellulose, and nanoclay as fillers for high-performance polylactide nanocomposites. J. Appl. Polym. Sci. 2016, 133, 43257. [CrossRef] 64. Zhang, Q.; Lei, H.; Cai, H.; Han, X.; Lin, X.; Qian, M.; Zhao, Y.; Huo, E.; Villota, E.M.; Mateo, W. Improvement on the properties of microcrystalline cellulose/polylactic acid composites by using activated biochar. J. Clean. Prod. 2020, 252, 119898. [CrossRef] 65. Jonoobi, M.; Mathew, A.P.; Abdi, M.M.; Makinejad, M.D.; Oksman, K. A comparison of modified and unmodified cellulose nanofiber reinforced polylactic acid (PLA) prepared by twin screw extrusion. J. Polym. Environ. 2012, 20, 991–997. [CrossRef]

PDF Image | Supercritical Carbon Dioxide Isolation of Cellulose Nanofibre

PDF Search Title:

Supercritical Carbon Dioxide Isolation of Cellulose Nanofibre

Original File Name Searched:

molecules-26-05276-v2.pdf

DIY PDF Search: Google It | Yahoo | Bing

Sulfur Deposition on Carbon Nanofibers using Supercritical CO2 Sulfur Deposition on Carbon Nanofibers using Supercritical CO2. Gamma sulfur also known as mother of pearl sulfur and nacreous sulfur... More Info

CO2 Organic Rankine Cycle Experimenter Platform The supercritical CO2 phase change system is both a heat pump and organic rankine cycle which can be used for those purposes and as a supercritical extractor for advanced subcritical and supercritical extraction technology. Uses include producing nanoparticles, precious metal CO2 extraction, lithium battery recycling, and other applications... More Info

CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com (Standard Web Page)