45 resultados para Biobased


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In the present study, films based on linter cellulose and chitosan were prepared using an aqueous solution of sodium hydroxide (NaOH)/thiourea as the solvent system. The dissolution process of cellulose and chitosan in NaOH/thiourea aqueous solution was followed by the partial chain depolymerization of both biopolymers, which facilitates their solubilization. Biobased films with different chitosan/cellulose ratios were then elaborated by a casting method and subsequent solvent evaporation. They were characterized by X-ray analysis, scanning electron microscopy (SEM), atomic force microscopy (AFM), thermal analysis, and tests related to tensile strength and biodegradation properties. The SEM images of the biofilms with 50/50 and 60/40 ratio of chitosan/cellulose showed surfaces more wrinkled than the others. The AFM images indicated that higher the content of chitosan in the biobased composite film, higher is the average roughness value. It was inferred through thermal analysis that the thermal stability was affected by the presence of chitosan in the films; the initial temperature of decomposition was shifted to lower levels in the presence of chitosan. Results from the tests for tensile strength indicated that the blending of cellulose and chitosan improved the mechanical properties of the films and that an increase in chitosan content led to production of films with higher tensile strength and percentage of elongation. The degradation study in a simulated soil showed that the higher the crystallinity, the lower is the biodegradation rate.

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Tannin-phenolic polymers prepared using tannin, a macromolecule obtained from natural sources, were used in the preparation of composites reinforced with coir fibers. The composites based on tannin-phenolic polymers (50% (w/w) of tannin as substitute of the phenol) were prepared using the coir fibers as reinforcement (30-70% (w/w), 3.0-6.0 cm, randomly distributed). The Izod impact strength of the composites showed an improvement in this property due to the incorporation of coir fibers in the tannin-phenolic matrices. The SEM images showed excellent adhesion at the fiber/matrix interface. The coir fiber had bundles regularly spaced, which enhanced the diffusion of the resin into the fiber. In addition, the high lignin content of this fiber results in a high concentration of aromatic rings, which increased the compatibility with the matrix. The values of the diffusion coefficient of water, determined using Fick`s laws, show that there was no correlation between the fiber percentage and the water diffusion. The DMTA curves showed that the storage moduli of the composites reinforced with coir fibers were considerably higher than that of the thermoset, and the increase in the proportion of fibers led to a proportional increase in the storage moduli of these materials. The biobased composites obtained have potential for non-structural applications, such as in the internal parts of automotives vehicles. To our knowledge, this is the first study on this kind of biobased composites. (C) 2010 Elsevier B.V. All rights reserved.

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In the present study, the main focus was the characterization and application of the by-product lignin isolated through an industrial organosolv acid hydrolysis process from sugarcane bagasse, aiming at the production of bioethanol. The sugarcane lignin was characterized and used to prepare phenolic-type resins. The analysis confirmed that the industrial sugarcane lignin is of HGS type, with a high proportion of the less substituted aromatic ring p-hydroxyphenyl units, which favors further reaction with formaldehyde. The lignin-formaldehyde resins were used to produce biobased composites reinforced with different proportions of randomly distributed sisal fibers. The presence of lignin moieties in both the fiber and matrix increases their mutual affinity, as confirmed by SEM images, which showed good adhesion at the biocomposite fiber/matrix interface. This in turn allowed good load transference from the matrix to the fiber, leading to biobased composites with good impact strength (near 500 J m(-1) for a 40 wt% sisal fiber-reinforced composite). The study demonstrates that sugarcane bagasse lignin obtained from a bioethanol plant can be used without excessive purification in the preparation of lignocellulosic fiber-reinforced biobased composites displaying high mechanical properties. Biotechnol. Bioeng. 2010;107: 612-621. (C) 2010 Wiley Periodicals, Inc.

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Lignocellulosic materials can significantly contribute to the development of biobased composites. In this work, glyoxal-phenolic resins for composites were prepared using glyoxal, which is a dialdehyde obtained from several natural resources. The resins were characterized by (1)H, (13)C, (2)D, and (31)P NMR spectroscopies. Resorcinol (10%) was used as an accelerator for curing the glyoxal-phenol resins in order to obtain the thermosets. The impact-strength measurement showed that regardless of the cure cycle used, the reinforcement of thermosets by 30% (w/w) sisal fibers improved the impact strength by one order of magnitude. Curing with cycle 1 (150 degrees C) induced a high diffusion coefficient for water absorption in composites, due to less interaction between the sisal fibers and water. The composites cured with cycle 2 (180 degrees C) had less glyoxal resin coverage of the cellulosic fibers, as observed by images of the fractured interface observed by SEM. This study shows that biobased composites with good properties can be prepared using a high proportion of materials obtained from natural resources. (C) 2009 Elsevier Ltd. All rights reserved.

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Thermoset phenolic composites reinforced with sisal fibers were prepared to optimize the cure step. In the present study, processing parameters such as pressure, temperature, and time interval were varied to control the vaporization of the water generated as a byproduct during the crosslinking reaction. These molecules can vaporize forming voids, which in turn affect the final material properties. The set of results on impact strength revealed that the application of higher pressure before the gel point of the phenolic matrix produced composites with better properties. The SEM images showed that the cure cycle corresponding to the application of higher values of molding pressure at the gel point of the phenolic resin led to the reduction of voids in the matrix. In addition, the increase in the molding pressure during the cure step increased the resin interdiffusion. Better filling of the fiber channels decreased the possibility of water molecules diffusing through the internal spaces of the fibers. These molecules then diffused mainly through the bulk of the thermoset matrix, which led to a decrease in the water diffusion coefficient (D) at all three temperatures (25, 55 and 70 degrees C) considered in the experiments. (C) 2009 Elsevier Ltd. All rights reserved.

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This research work develops new methods to produce biodegradable starch-based trays for the purpose of replacing expanded polystyrene in the food packaging market. The starch based biopolymers present several drawbacks like poor mechanical properties and very high density. In order to overcome these drawbacks two research lines have been set up: blending thermoplastic starch with biobased reinforcements from agricultural wastes like barley straw and grape wastes, and testing the foamability of these materials with a Microwave-foaming method.

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A tannin-phenolic resin (40 wt% of tannin, characterized by H-1 nuclear magnetic resonance (NMR) and C-13 NMR, Fourier transform infrared, thermogravimetry, differential scanning calorimetry) was used to prepare composites reinforced with sisal fibers (30-70 wt%). Inverse gas chromatography results showed that the sisal fibers and the tannin-phenolic thermoset have close values of the dispersive component and also have predominance of acid sites (acid character) at the surface, confirming the favoring of interaction between the sisal fibers and the tannin-phenolic matrix at the interface. The Izod impact strength increased up to 50 wt% of sisal fibers. This composite also showed high storage modulus, and the lower loss modulus, confirming its good fiber/matrix interface, also observed by SEM images. A composite with good properties was prepared from high content of raw material obtained from renewable sources (40 wt% of tannin substituted the phenol in the preparation of the matrix and 50 wt% of matrix was replaced by sisal fibers). (C) 2012 Elsevier Ltd. All rights reserved.

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The research described in this dissertation is comprised of two major parts. The first part studied the effects of asymmetric amphiphilic end groups on the thermo-response of diblock copolymers of (oligo/di(ethylene glycol) methyl ether (meth)acrylates, OEGA/DEGMA) and the hybrid nanoparticles of these copolymers with a gold nanoparticle core. Placing the more hydrophilic end group on the more hydrophilic block significantly increased the cloud point compared to a similar copolymer composition with the end group placement reversed. For a given composition, the cloud point was shifted by as much as 28 °C depending on the placement of end groups. This is a much stronger effect than either changing the hydrophilic/hydrophobic block ratio or replacing the hydrophilic acrylate monomer with the equivalent methacrylate monomer. The temperature range of the coil-globule transition was also altered. Binding these diblock copolymers to a gold core decreased the cloud point by 5-15 °C and narrowed the temperature range of the coil-globule transition. The effects were more pronounced when the gold core was bound to the less hydrophilic block. Given the limited numbers of monomers that are approved safe for in vivo use, employing amphiphilic end group placement is a useful tool to tune a thermo-response without otherwise changing the copolymer composition. The second part of the dissertation investigated the production of value-added nanomaterials from two biorefinery “wastes”: lignin and peptidoglycan. Different solvents and spinning methods (melt-, wet-, and electro-spinning) were tested to make lignin/cellulose blended and carbonized fibers. Only electro-spinning yielded fibers having a small enough diameter for efficient carbonization ( Peptidoglycan (a bacterial cell wall material) was copolymerized with poly-(3-hydroxybutyrate), a common polyhydroxyalkanoate produced by bacteria with the objective of determining if a useful material could be obtained with a less rigorous work-up on harvesting polyhydroxyalkanoates. The copolyesteramide product having 25 wt.% peptidoglycan from a highly purified peptidoglycan increased thermal stability by 100-200 °C compared to the poly-(3-hydroxybutyrate) control, while a less pure peptidoglycan, harvested from B. megaterium (ATCC 11561), gave a 25-50 °C increase in thermal stability. Both copolymers absorbed more moisture than pure poly-(3-hydroxybutyrate). The results suggest that a less rigorously harvested and purified polyhydroxyalkanoate might be useful for some applications.

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Cassava contributes significantly to biobased material development. Conventional approaches for its bio-derivative-production and application cause significant wastes, tailored material development challenges, with negative environmental impact and application limitations. Transforming cassava into sustainable value-added resources requires redesigning new approaches. Harnessing unexplored material source, and downstream process innovations can mitigate challenges. The ultimate goal proposed an integrated sustainable process system for cassava biomaterial development and potential application. An improved simultaneous release recovery cyanogenesis (SRRC) methodology, incorporating intact bitter cassava, was developed and standardized. Films were formulated, characterised, their mass transport behaviour, simulating real-distribution-chain conditions quantified, and optimised for desirable properties. Integrated process design system, for sustainable waste-elimination and biomaterial development, was developed. Films and bioderivatives for desired MAP, fast-delivery nutraceutical excipients and antifungal active coating applications were demonstrated. SRRC-processed intact bitter cassava produced significantly higher yield safe bio-derivatives than peeled, guaranteeing 16% waste-elimination. Process standardization transformed entire root into higher yield and clarified colour bio-derivatives and efficient material balance at optimal global desirability. Solvent mass through temperature-humidity-stressed films induced structural changes, and influenced water vapour and oxygen permeability. Sevenunit integrated-process design led to cost-effectiveness, energy-efficient and green cassava processing and biomaterials with zero-environment footprints. Desirable optimised bio-derivatives and films demonstrated application in desirable in-package O2/CO2, mouldgrowth inhibition, faster tablet excipient nutraceutical dissolutions and releases, and thymolencapsulated smooth antifungal coatings. Novel material resources, non-root peeling, zero-waste-elimination, and desirable standardised methodology present promising process integration tools for sustainable cassava biobased system development. Emerging design outcomes have potential applications to mitigate cyanide challenges and provide bio-derivative development pathways. Process system leads to zero-waste, with potential to reshape current style one-way processes into circular designs modelled on nature's effective approaches. Indigenous cassava components as natural material reinforcements, and SRRC processing approach has initiated a process with potential wider deployment in broad product research development. This research contributes to scientific knowledge in material science and engineering process design.

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This work mainly arises from the necessity to support the rapid introduction of different biobased polymers that the industrial sector has been facing lately. Indeed, while considerable efforts are being made to find environmentally and economically sustainable materials, less attention is paid to their need to be properly compounded to fulfil increasingly rigorous technical and quality requirements. Therefore, there is a strong demand for the development of a novel generation of compatible additives able to improve the properties of biobased polymers while respecting sustainability. With this in mind, a new class of biobased plasticizers is herein proposed. Five different ketal-diesters were selectively synthesized starting from levulinic acid, a promising renewable chemical platform. These molecules were added to poly(vinyl chloride) as model polymer to test their plasticizing effectiveness. Complete morphological, thermal and viscoelastic characterizations showed a clear correlation between the structural features of the ketal-esters and the properties of the material. In addition, no significant leaching was found in both hydrophilic and lipophilic environments. Importantly, the proposed ketal-diesters performed comparably and, in some cases, even better than commercial plasticizers. The same molecules were then added to bacterial poly(3-hydroxybutyrate), a semicrystalline polyester characterized by poor thermal and mechanical properties. Morphology assessments showed no phase separation and the plasticizing effectiveness was confirmed by thermal and viscoelastic analyses, while leaching tests showed low extraction values. Readily usable fractions with controlled structure and tailored properties were obtained from highly heterogeneous industrial grade Kraft lignin. These fractions were then added to poly(vinyl alcohol). Promising preliminary results in terms of compatibility were achieved, with thermograms showing only one glass transition temperature. Finally, a fully biobased glycerol-trilevulinate was successfully synthesized by means of a mild and solvent-free route. Its plasticizing effectiveness was evaluated on poly(vinyl chloride), showing a significant decrease of the glass transition temperature of the material.

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L’incremento mondiale nel consumo di materie plastiche registrato negli ultimi ottant’anni, ha portato all’insorgere di diverse problematiche ambientali, legate allo smaltimento dei rifiuti e all’eccessivo sfruttamento dei giacimenti petroliferi. La situazione risulta particolarmente difficoltosa nel settore di massimo utilizzo delle plastiche: il food packaging. Una delle possibili soluzioni è l’utilizzo di bioplastiche, soprattutto quelle derivanti da biomassa. Fra queste, di particolare interesse sono i biopolimeri a base di acido 2,5-furandicarbossilico (FDCA), come il poli(butilene furanoato) (PBF) dotato di ottime proprietà meccaniche, termiche e barriera, ma caratterizzato al contempo da eccessiva rigidità. Il presente lavoro di Tesi Magistrale si propone di modulare le proprietà del PBF, mediante copolimerizzazione con acido isoftalico, monomero biobased e in grado di conferire buone proprietà barriera al materiale finale. I due monomeri aromatici, in diversa percentuale molare, sono stati polimerizzati con 1,4-butandiolo, ottenendo un sistema copolimerico poli(butilene furanoato-co-isoftalato) 100% biobased. I materiali sintetizzati sono stati sottoposti a caratterizzazione molecolare (1H-NMR, 13C-NMR e GPC), termica (TGA e DSC), diffrattometrica (WAXS), analisi meccanica e prove barriera. Essi hanno mostrato ottime proprietà meccaniche, con riduzione del modulo elastico e aumento dell’allungamento a rottura all’aumentare della percentuale di unità isoftalica impiegata, ottima stabilità termica (oltre 350°C) e proprietà barriera confrontabili con quelle dei polimeri di derivazione petrolchimica, attualmente utilizzati nel campo degli imballaggi. I risultati ottenuti mostrano come la copolimerizzazione abbia permesso di migliorare le proprietà non soddisfacenti del PBF, senza andare a detrimento di quelle già buone, nell’ottica dell’applicazione finale.

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Il presente lavoro di Tesi Magistrale nasce dall’esigenza di trovare soluzioni alle problematiche legate alla produzione e smaltimento delle plastiche, prevalentemente provenienti dal packaging alimentare. Una delle strategie maggiormente utilizzate in alternativa all’accumulo in discarica, è il riciclo. Questa soluzione ha però alcuni limiti: basse performance rispetto al materiale vergine e costi di processo troppo elevati a causa dei problemi di contaminazione e delle strutture multistrato. Alla luce di ciò, la ricerca scientifica si è orientata verso nuovi approcci come la sintesi di bioplastiche compostabili. Il poli(butilene furanoato) (PBF), è un buon candidato come materiale plastico per il packaging alimentare, ma possiede scarse caratteristiche di biodegradabilità e proprietà meccaniche non adeguate all’imballaggio flessibile. Per superare tali limitazioni, è stata messa a punto la sintesi di un nuovo poliestere, il poli(dietilene furanoato) (PDEF), un polimero biobased che si differenzia dal PBF per la presenza di un atomo di ossigeno etereo nella sub-unità glicolica. I due polimeri sono stati sottoposti ad una completa caratterizzazione chimico-fisica, con lo scopo di valutare l’effetto dell’introduzione di ossigeni eterei lungo la catena polimerica sulle proprietà finali del materiale. Oltre alla caratterizzazione molecolare e strutturale, è stato studiato anche il comportamento termico, la risposta meccanica e la permeabilità a diversi tipi di gas oltre che le caratteristiche di compostabilità. I risultati ottenuti hanno mostrato come nel PDEF vi sia un netto miglioramento delle proprietà non idonee per applicazioni nel packaging flessibile del PBF, in particolare quelle meccaniche, insieme a un ulteriore potenziamento delle già buone proprietà barriera. Inoltre, aspetto di fondamentale importanza nell’ottica della realizzazione di un materiale ecosostenibile, il PDEF mostra una velocità di degradazione in compost eccezionalmente elevata.

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Questo progetto di tesi sperimentale è incentrato sulla sintesi di un copolimero multiblocco alifatico/aromatico a partire da reagenti aventi origine da fonti rinnovabili. L’applicazione proposta per il prodotto è nell’ambito del packaging sostenibile. E’ stato prima sintetizzato il poli(pentametilene furanoato) idrossil-terminato (PPeF-OH) a partire dall’acido 2,5-furandicarbossilico; esso è stato poi sottoposto ad una reazione di estensione di catena con acido poli-L-lattico (PLLA) parzialmente depolimerizzato. L’innovativa strategia di sintesi utilizzata è in linea con i principi della green chemistry, partendo da building block bio-based ed evitando l’uso di solventi. Il copolimero finale, definito P(LLA50PeF50)-CE, è stato caratterizzato dal punto di vista molecolare, strutturale e termico attraverso, rispettivamente, analisi NMR e GPC, WAXS, TGA e DSC. Sono state anche effettuate prove a trazione, test delle proprietà barriera e valutazione della compostabilità. I risultati dimostrano che la stabilità termica del PLLA è stata migliorata, determinando anche un allargamento della finestra di processabilità del materiale; la rigidità e la fragilità del PLLA sono state ridotte, rendendo il nuovo materiale idoneo alla realizzazione di film per imballaggi flessibili. La permeabilità all’ossigeno del PLLA è stata migliorata del 40% circa e un analogo miglioramento è stato riscontrato anche rispetto all’anidride carbonica. Infine, la compostabilità del PLLA non è stata compromessa.

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L’utilizzo di biomasse come fonte di chemicals nell’industria chimica mira a rendere più sostenibili i processi industriali e i materiali prodotti. In particolare, l’acido crotonico (AC), impiegato come building block nella produzione di vernici e rivestimenti, è prodotto tradizionalmente da fonti fossili. La domanda globale ammonta a circa 1000 tonnellate ed è in continuo aumento, rendendo prioritaria l’individuazione di una sintesi alternativa e sostenibile. In questo studio, l’analisi del ciclo di vita (life cycle assessment, LCA) è stata applicata per stimare la carbon footprint e la domanda cumulativa di energia relative ad una sintesi innovativa dell’AC, basata sulla conversione termica di un precursore derivato da biomasse di scarto. In particolare, il processo prevede l’applicazione di un trattamento termochimico a poli-idrossi-butirrati (PHB) prodotti da colture batteriche miste a valle del processo B-PLAS. Sono stati modellati due scenari comparativi con l’obiettivo di (i) valutare la sostenibilità ambientale della sintesi alternativa nella tecnologia B-PLAS, considerando una condizione “base” di processo (con un contenuto di PHB pari al 30% nello slurry in ingresso al processo) e una “ottimale” (con un contenuto di PHB pari al 60%); (ii) confrontare gli impatti ambientali del processo di sintesi alternativo per entrambi gli scenari con quelli di sintesi dell’AC da fonti fossili. I risultati dell’LCA mostrano che nel processo B-PLAS, giunti alla produzione dello slurry (fango) arricchito in PHB, si possono avere due strade equivalenti estraendo i PHB o convertendoli in AC con una lieve preferenza per il processo estrattivo (0.71MJ/kgslurry vs 1.11MJ/kgslurry) nella condizione di base e (0.69MJ/kgslurry vs 1.17MJ/kgslurry) in quella ottimale. Estendendo la comparazione alla produzione dell’AC da fonti fossili, quello bioderivato comporta un impatto ambientale ampiamente inferiore, stimato in 159.6 MJ/kgAC e 204.6 MJ/kgAC per gli scenari “base” e “ottimale”.

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Glioxal pode ser obtido a partir de biomassa (como da oxidação de lipídeos) e não é tóxico ou volátil, tendo sido por isso utilizado no presente trabalho como substituto de formaldeído na preparação de resina fenólica do tipo novolaca, sendo usado como catalisador o ácido oxálico, que também pode ser obtido de fontes renováveis. A resina glioxal-fenol foi utilizada na preparação de compósitos reforçados com celulose microcristalina (CM, 30, 50 e 70% em massa), uma celulose com elevada área superficial. As imagens de microscopia eletrônica de varredura (MEV) das superfícies fraturadas demonstraram que os compósitos apresentaram boa interface reforço/matriz, consequência da elevada área superficial da CM e presença de grupos polares (hidroxilas) tanto na matriz como na celulose, o que permitiu a formação de ligações hidrogênio, favorecendo a compatibilidade entre ambas. A análise térmica dinâmico-mecânica (DMTA) demonstrou que todos os compósitos apresentaram elevado módulo de armazenamento à temperatura ambiente. Além disso, o compósito reforçado com 30% de CM apresentou baixa absorção de água, comparável à do termorrígido fenólico, que é utilizado em escala industrial. Os resultados demonstraram que compósitos com boas propriedades podem ser preparados usando elevada proporção de materiais obtidos de biomassa.