907 resultados para CeO2-TiO2


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[EN] New TiO2 catalysts have been synthesised by means of a sol–gel method in which aggregates have been selected before thermal treatment. Sieving and calcination temperature have been proved to be key factors in obtaining catalysts with greater photoactivity than that of Degussa P-25. These new catalysts have been characterized by means of transmission electron microscopy (TEM), BET surface area, diffuse reflectance spectroscopy (DRS), UV–vis spectroscopy, Fourier transformed infrared (FTIR) and X-ray diffraction (XRD). The different parameters studied were compared to those obtained from two commercial catalysts (Degussa P-25 and Hombikat-UV100). The photocatalytic efficiency of the new catalysts was evaluated by the degradation of various phenolic compounds using UV light (maximum around 365 nm, 9mW). The catalyst sieved and calcinated at 1023 K, ECT-1023t, showed phenol degradation rates 2.7 times higher than those of Degussa P-25. Also in the degradation of different phenolic compounds, this catalyst showed a higher activity than that of the commercial one. The high photoactivity of this new catalyst has been attributed to the different distribution of surface defects (determined from FTIR studies) and its increased capacity to yield H2O2

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Tutor: Javier Araña Mesa. Programa de doctorado: Ingenierías Química, Mecánica y de Fabricación

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[ES]Póster presentado en 3rd European Conference on Environmental Applications of Advanced Oxidation Processes.

El contenido del póster corresponde a parte del trabajo de tesis doctoral de la Dra. Cristina Rodríguez López.

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Al giorno d’oggi i combustibili fossili come carbone, olio e gas naturale forniscono più del 75% dell’energia mondiale. Tuttavia, la crescente richiesta di queste fonti di energia non rinnovabili, si manifesta in un momento in cui le riserve naturali si stanno esaurendo; è stato infatti stimato che le riserve petrolifere di tutto il mondo possano essere sufficienti per fornire energia e produrre prodotti chimici per i prossimi quarant’anni. Per questo motivo la conversione delle biomasse per produrre energia e prodotti chimici sta diventando una valida alternativa per diversificare le fonti energetiche e ridurre il surriscaldamento globale. Le biomasse, infatti, oltre ad essere una fonte rinnovabile, generano minori emissioni di gas serra rispetto ai combustibili fossili, perché la CO2 rilasciata nei processi di utilizzo viene bilanciata da quella consumata nel processo di crescita delle biomasse stesse. Lo sfruttamento delle biomasse per la produzione di building blocks per la chimica suscita particolare interesse, poiché le molecole ottenute sono già parzialmente funzionalizzate; ciò significa che la sintesi di prodotti chimici specifici richiede un minor numero di stadi rispetto ai building blocks petroliferi, con conseguente diminuzione di prodotti di scarto e sottoprodotti. Un esempio di queste potenziali “molecole piattaforma” è il 5-idrossimetilfurfurale (HMF), un importante composto derivato dalla disidratazione di zuccheri, intermedio chiave per la sintesi di un’ampia varietà di prodotti chimici e combustibili alternativi, tra cui l’acido 2,5- furandicarbossilico (FDCA), che è stato identificato tra i dodici composti chimici più importanti degli ultimi anni. Per esempio, il FDCA è un possibile sostituto dell’acido tereftalico, usato per produrre il polietilentereftalato (PET). Recentemente alcuni autori hanno riportato interessanti risultati sull’ossidazione dell’HMF a FDCA utilizzando catalizzatori a base di Au supportato. Questi catalizzatori mostrano però significativi problemi di disattivazione. Lo scopo di questo lavoro di tesi è stato quindi lo sviluppo di catalizzatori attivi e stabili nella reazione di ossidazione dell’HMF a FDCA. Il lavoro portato avanti ha avuto come obbiettivi principali: l’ottimizzazione della sintesi di nanoparticelle di oro e oro/rame a diverso rapporto molare, mediante un processo di sintesi, in acqua, a basso impatto ambientale. Tale metodo di sintesi si basa sull’azione riducente del sistema glucosio-NaOH ed è stato messo a punto in lavori di tesi precedenti. Le nanoparticelle sintetizzate sono state utilizzate, quali fase attiva, per la preparazione di catalizzatori supportati su TiO2 e CeO2 lo studio dell’attività catalitica e riusabilità dei catalizzatori preparati nell’ossidazione in fase liquida del HMF a FDCA.

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Oggigiorno si osserva a livello mondiale un continuo aumento dei consumi di acqua per uso domestico, agricolo ed industriale che dopo l’impiego viene scaricata nei corpi idrici (laghi, fiumi, torrenti, bacini, ecc) con caratteristiche chimico fisiche ed organolettiche completamente alterate, necessitando così di specifici trattamenti di depurazione. Ricerche relative a metodi di controllo della qualità dell’acqua e, soprattutto, a sistemi di purificazione rappresentano pertanto un problema di enorme importanza. I trattamenti tradizionali si sono dimostrati efficienti, ma sono metodi che operano normalmente trasferendo l’inquinante dalla fase acquosa contaminata ad un’altra fase, richiedendo perciò ulteriori processi di depurazione. Recentemente è stata dimostrata l’efficacia di sistemi nano strutturati come TiO2-Fe3O4 ottenuto via sol-gel, nella foto-catalisi di alcuni sistemi organici. Questo lavoro di tesi è rivolto alla sintesi e caratterizzazione di un catalizzatore nanostrutturato composito costituito da un core di Fe3O4 rivestito da un guscio di TiO2 separate da un interstrato inerte di SiO2, da utilizzare nella foto-catalisi di sistemi organici per la depurazione delle acque utilizzando un metodo di sintesi alternativo che prevede un “approccio” di tipo colloidale. Partendo da sospensioni colloidali dei diversi ossidi, presenti in commercio, si è condotta la fase di deposizione layer by layer via spray drying, sfruttando le diverse cariche superficiali dei reagenti. Questo nuovo procedimento permette di abbattere i costi, diminuire i tempi di lavoro ed evitare possibili alterazioni delle proprietà catalitiche della titania, risultando pertanto adatto ad una possibile applicazione su scala industriale. Tale sistema composito consente di coniugare le proprietà foto-catalitiche dell’ossido di titanio con le proprietà magnetiche degli ossidi di ferro permettendo il recupero del catalizzatore a fine processo. Il foto-catalizzatore è stato caratterizzato durante tutte la fasi di preparazione tramite microscopia SEM e TEM, XRF, Acusizer, spettroscopia Raman e misure magnetiche. L’attività foto-calitica è stata valutata con test preliminari utilizzando una molecola target tipo il rosso di metile in fase acquosa. I risultati ottenuti hanno dimostrato che il sistema core-shell presenta inalterate sia le proprietà magnetiche che quelle foto-catalitiche tipiche dei reagenti.

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During the last years we assisted to an exponential growth of scientific discoveries for catalysis by gold and many applications have been found for Au-based catalysts. In the literature there are several studies concerning the use of gold-based catalysts for environmental applications and good results are reported for the catalytic combustion of different volatile organic compounds (VOCs). Recently it has also been established that gold-based catalysts are potentially capable of being effectively employed in fuel cells in order to remove CO traces by preferential CO oxidation in H2-rich streams. Bi-metallic catalysts have attracted increasing attention because of their markedly different properties from either of the costituent metals, and above all their enhanced catalytic activity, selectivity and stability. In the literature there are several studies demostrating the beneficial effect due to the addition of an iron component to gold supported catalysts in terms of enhanced activity, selectivity, resistence to deactivation and prolonged lifetime of the catalyst. In this work we tried to develop a methodology for the preparation of iron stabilized gold nanoparticles with controlled size and composition, particularly in terms of obtaining an intimate contact between different phases, since it is well known that the catalytic behaviour of multi-component supported catalysts is strongly influenced by the size of the metal particles and by their reciprocal interaction. Ligand stabilized metal clusters, with nanometric dimensions, are possible precursors for the preparation of catalytically active nanoparticles with controlled dimensions and compositions. Among these, metal carbonyl clusters are quite attractive, since they can be prepared with several different sizes and compositions and, moreover, they are decomposed under very mild conditions. A novel preparation method was developed during this thesis for the preparation of iron and gold/iron supported catalysts using bi-metallic carbonyl clusters as precursors of highly dispersed nanoparticles over TiO2 and CeO2, which are widely considered two of the most suitable supports for gold nanoparticles. Au/FeOx catalysts were prepared by employing the bi-metallic carbonyl cluster salts [NEt4]4[Au4Fe4(CO)16] (Fe/Au=1) and [NEt4][AuFe4(CO)16] (Fe/Au=4), and for comparison FeOx samples were prepared by employing the homometallic [NEt4][HFe3(CO)11] cluster. These clusters were prepared by Prof. Longoni research group (Department of Physical and Inorganic Chemistry- University of Bologna). Particular attention was dedicated to the optimization of a suitable thermal treatment in order to achieve, apart from a good Au and Fe metal dispersion, also the formation of appropriate species with good catalytic properties. A deep IR study was carried out in order to understand the physical interaction between clusters and different supports and detect the occurrence of chemical reactions between them at any stage of the preparation. The characterization by BET, XRD, TEM, H2-TPR, ICP-AES and XPS was performed in order to investigate the catalysts properties, whit particular attention to the interaction between Au and Fe and its influence on the catalytic activity. This novel preparation method resulted in small gold metallic nanoparticles surrounded by highly dispersed iron oxide species, essentially in an amorphous phase, on both TiO2 and CeO2. The results presented in this thesis confirmed that FeOx species can stabilize small Au particles, since keeping costant the gold content but introducing a higher iron amount a higher metal dispersion was achieved. Partial encapsulation of gold atoms by iron species was observed since the Au/Fe surface ratio was found much lower than bulk ratio and a strong interaction between gold and oxide species, both of iron oxide and supports, was achieved. The prepared catalysts were tested in the total oxidation of VOCs, using toluene and methanol as probe molecules for aromatics and alchols, respectively, and in the PROX reaction. Different performances were observed on titania and ceria catalysts, on both toluene and methanol combustion. Toluene combustion on titania catalyst was found to be enhanced increasing iron loading while a moderate effect on FeOx-Ti activity was achieved by Au addition. In this case toluene combustion was improved due to a higher oxygen mobility depending on enhanced oxygen activation by FeOx and Au/FeOx dispersed on titania. On the contrary ceria activity was strongly decreased in the presence of FeOx, while the introduction of gold was found to moderate the detrimental effect of iron species. In fact, excellent ceria performances are due to its ability to adsorb toluene and O2. Since toluene activation is the determining factor for its oxidation, the partial coverage of ceria sites, responsible of toluene adsorption, by FeOx species finely dispersed on the surface resulted in worse efficiency in toluene combustion. Better results were obtained for both ceria and titania catalysts on methanol total oxidation. In this case, the performances achieved on differently supported catalysts indicate that the oxygen mobility is the determining factor in this reaction. The introduction of gold on both TiO2 and CeO2 catalysts, lead to a higher oxygen mobility due to the weakening of both Fe-O and Ce-O bonds and consequently to enhanced methanol combustion. The catalytic activity was found to strongly depend on oxygen mobility and followed the same trend observed for catalysts reducibility. Regarding CO PROX reaction, it was observed that Au/FeOx titania catalysts are less active than ceria ones, due to the lower reducibility of titania compared to ceria. In fact the availability of lattice oxygen involved in PROX reaction is much higher in the latter catalysts. However, the CO PROX performances observed for ceria catalysts are not really high compared to data reported in literature, probably due to the very low Au/Fe surface ratio achieved with this preparation method. CO preferential oxidation was found to strongly depend on Au particle size but also on surface oxygen reducibility, depending on the different oxide species which can be formed using different thermal treatment conditions or varying the iron loading over the support.

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Le Dye – Sensitized Solar Cells (DSSC) sono attualmente considerate tra le alternative più promettenti al fotovoltaico tradizionale. I ridotti costi di produzione e l’elevata versatilità di utilizzo rappresentano i punti di forza di questi dispositivi innovativi. Ad oggi la ricerca è concentrata prevalentemente sull’incremento delle prestazioni delle DSSC, ottenibile solamente attraverso un miglioramento delle funzioni dei singoli componenti e dell’interazione sinergica tra questi. Tra i componenti, ha recentemente assunto particolare interesse il blocking layer (BL), costituito generalmente da un film sottile di TiO2 depositato sulla superficie dell’anodo (FTO) e in grado di ottimizzare i fenomeni all’interfaccia FTO/TiO2/elettrolita. Nel corso di questo lavoro di tesi si è rivolta l’attenzione prevalentemente sulle caratteristiche del BLs (ad esempio proprietà morfologico – strutturali) cercando di mettere in correlazione il processo di deposizione con le caratteristiche finali del film ottenuto. A questo scopo è stato ottimizzato un processo di deposizione dei film via spin coating, a partire da soluzioni acquosa o alcolica di precursore (TiCl4). I film ottenuti sono stati confrontati con quelli depositati tramite un processo di dip coating riportato in letteratura. I BLs sono stati quindi caratterizzati tramite microscopia (SEM – AFM), spettrofotometria (UV.- Vis) e misure elettrochimiche (CV – EIS). I risultati ottenuti hanno messo in evidenza come i rivestimenti ottenuti da soluzione acquosa di precursore, indipendentemente dalla tecnica di deposizione utilizzata (spin coating o dip coating) diano origine a film disomogenei e scarsamente riproducibili, pertanto non idonei per l’applicazione nelle DSSC. Viceversa, i BLs ottenuti via spin coating dalla soluzione alcolica di TiCl4 sono risultati riproducibili, omogenei, e uniformemente distribuiti sulla superficie di FTO. Infine, l’analisi EIS ha in particolare evidenziato un effettivo aumento della resistenza al trasferimento di carica tra elettrodo FTO ed elettrolita in presenza di questi BLs, fenomeno generalmente associato ad un efficace blocking effect.

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L’ossidazione catalitica parziale (CPO) del metano è un processo di elevato interesse scientifico ed industriale, permettendo la produzione su piccola scala di H2 o la produzione di syngas con un rapporto H2/CO = 2, utile per la produzione di metanolo o la sintesi di Fischer-Tropsch di idrocarburi. Inoltre, si possono raggiungere elevate conversioni del metano e selettività in syngas operando a bassi valori del tempo di contatto, riducendo così le dimensioni dei reattori. Tuttavia, gli elevati flussi e le temperature raggiunte nel letto possono condurre rapidamente alla disattivazione del catalizzatore; pertanto, è necessario lo sviluppo di materiali non soltanto attivi, ma anche stabili nelle condizioni di reazione. Lo scopo di questo lavoro è stato lo sviluppo di catalizzatori a base di Rh e ceria, utilizzati sia come pellets che supportati su una schiuma metallica. In particolare, il lavoro è stato focalizzato sulla sintesi, caratterizzazione ed attività catalitica di materiali Rh-CeO2-Al2O3. La presenza di CeO2 può modificare la dispersione del Rh metallico e la sua stabilità nei confronti della sinterizzazione e della formazione del carbone, mentre la stabilità termica è favorita dalla presenza di Al2O3. Poiché queste proprietà e, di conseguenza, le prestazione catalitiche dipendono dalla dimensioni delle particelle di CeO2 sono stati preparati catalizzatori con diverso contenuto di CeO2 (10 e 20 p/p %) ed utilizzando differenti metodi di preparazione per modularne le proprietà. Le sintesi sono effettuate per coprecipitazione e per sintesi con urea per trattamento micronde-idrotermale. Le prestazione dei catalizzatori in pellets sono state analizzate in un impianto di laboratorio operando a bassi valori del tempo di contatto e modificando la temperatura e la concentrazione della miscela gassosa, i.e. sia in condizioni lontane dall’equilibrio termodinamico che in condizioni prossime a quelle industriali. Un catalizzatore con lo stesso contenuto di Rh ed ottenuto da precursori tipo idrotalcite (HT) è stato utilizzato come riferimento. Per incrementare ulteriormente le prestazioni catalitiche, in particolare il trasferimento del calore lungo il letto catalitico, la migliore composizione individuata delle prove precedenti è stata depositata su pellets di una schiuma metallica (FeCrAlloy). E’ stato utilizzato il metodo dell’elettrosintesi per la deposizione di idrossidi di Rh, Ce e Al, ottenendo dopo calcinazione catalizzatori strutturati. Si è valutato l’effetto dei parametri di sintesi, potenziale applicato e tempo, sulle proprietà catalitiche. Anche in questo caso i risultati sono stati confrontati quelli ottenuti con un catalizzatori di riferimento ottenuti da un precursore HT preparati per elettrosintesi.

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Life Cycle Assessment (LCA) is a chain-oriented tool to evaluate the environment performance of products focussing on the entire life cycle of these products: from the extraction of resources, via manufacturing and use, to the final processing of the disposed products. Through all these stages consumption of resources and pollutant releases to air, water, soil are identified and quantified in Life Cycle Inventory (LCI) analysis. Subsequently to the LCI phase follows the Life Cycle Impact Assessment (LCIA) phase; that has the purpose to convert resource consumptions and pollutant releases in environmental impacts. The LCIA aims to model and to evaluate environmental issues, called impact categories. Several reports emphasises the importance of LCA in the field of ENMs. The ENMs offer enormous potential for the development of new products and application. There are however unanswered questions about the impacts of ENMs on human health and the environment. In the last decade the increasing production, use and consumption of nanoproducts, with a consequent release into the environment, has accentuated the obligation to ensure that potential risks are adequately understood to protect both human health and environment. Due to its holistic and comprehensive assessment, LCA is an essential tool evaluate, understand and manage the environmental and health effects of nanotechnology. The evaluation of health and environmental impacts of nanotechnologies, throughout the whole of their life-cycle by using LCA methodology. This is due to the lack of knowledge in relation to risk assessment. In fact, to date, the knowledge on human and environmental exposure to nanomaterials, such ENPs is limited. This bottleneck is reflected into LCA where characterisation models and consequently characterisation factors for ENPs are missed. The PhD project aims to assess limitations and challenges of the freshwater aquatic ecotoxicity potential evaluation in LCIA phase for ENPs and in particular nanoparticles as n-TiO2.

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Al giorno d’oggi, la produzione di energia e di molecole di base per l’industria chimica è completamente dipendente da risorse non rinnovabili come petrolio, carbone e gas naturale ; con tali risorse in via di esaurimento e la sempre crescente domanda di energia e materiali da parte di tutte le economie, risulta obbligatorio sviluppare tecniche per la loro produzione da risorse rinnovabili. Le biomasse, oltre ad essere una fonte rinnovabile, generano minori emissioni di gas serra rispetto ai combustibili fossili, perché la CO2 rilasciata nei processi di utilizzo viene bilanciata da quella consumata nel processo di crescita delle biomasse stesse. Tuttavia, ad oggi, lo sfruttamento di queste fonti risulta ancora sfavorito economicamente a causa di processi industriali non ancora ottimizzati, i cui costi si ripercuotono sul prodotto finale. Le molecole derivanti dagli scarti lignocellulosici possono essere usate come molecole di partenza per industrie chimiche di qualsiasi tipo, da quelle farmaceutiche a quelle plastiche. Queste molecole sono già parzialmente funzionalizzate; ciò significa che la sintesi di prodotti chimici specifici richiede un minor numero di stadi rispetto ai building blocks petroliferi, con conseguente diminuzione di prodotti di scarto e sottoprodotti . Una delle molecole “piattaforma” identificate tra le più importanti per la produzione di diversi prodotti chimici, risulta essere il 5-idrossimetilfurfurale (HMF) , derivante dalla disidratazione di polisaccaridi esosi, da cui si può ottenere tramite ossidazione selettiva, l’acido 2,5-furandicarbossilico (FDCA), potenziale sostituto dell’acido tereftalico nella produzione del PET e molti altri prodotti. Lo scopo di questo lavoro di tesi è stato lo studio della reattività di catalizzatori a base di Pd e Au/Pd utilizzati nella reazione di ossidazione dell’HMF a FDCA. Il lavoro svolto ha avuto come obiettivi principali: • L’ottimizzazione della sintesi di nanoparticelle di Pd e Au/Pd a diverso rapporto molare, e la caratterizzazione delle sospensioni ottenute mediante analisi DLS, XRD e TEM. • La preparazione di catalizzatori supportati su TiO2 e la caratterizzazione dei catalizzatori ottenuti tramite analisi BET, TEM e analisi termiche TGA/DSC. • Lo studio dell’attività catalitica dei catalizzatori preparati nell’ossidazione selettiva in fase liquida del 5-idrossimetilfurfurale (HMF) ad acido 2,5-furandicarbossilico (FDCA) e del meccanismo di reazione.

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Outdoor bronzes exposed to the environment form naturally a layer called patina, which may be able to protect the metallic substrate. However, since the last century, with the appearance of acid rains, a strong change in the nature and properties of the copper based patinas occurred [1]. Studies and general observations have established that bronze corrosion patinas created by acid rain are not only disfiguring in terms of loss of detail and homogeneity, but are also unstable [2]. The unstable patina is partially leached away by rainwater. This leaching is represented by green streaking on bronze monuments [3]. Because of the instability of the patina, conservation techniques are usually required. On a bronze object exposed to the outdoor environment, there are different actions of the rainfall and other atmospheric agents as a function of the monument shape. In fact, we recognize sheltered and unsheltered areas as regards exposure to rainwater [4]. As a consequence of these different actions, two main patina types are formed on monuments exposed to the outdoor environment. These patinas have different electrochemical, morphological and compositional characteristics [1]. In the case of sheltered areas, the patina contains mainly copper products, stratified above a layer strongly enriched in insoluble Sn oxides, located at the interface with the uncorroded metal. Moreover, different colors of the patina result from the exposure geometry. The surface color may be pale green for unsheltered areas, and green and mat black for sheltered areas [4]. Thus, in real outdoor bronze monuments, the corrosion behavior is strongly influenced by the exposure geometry. This must be taken into account when designing conservation procedures, since the patina is in most cases the support on which corrosion inhibitors are applied. Presently, for protecting outdoor bronzes against atmospheric corrosion, inhibitors and protective treatments are used. BTA and its derivatives, which are the most common inhibitors used for copper and its alloy, were found to be toxic for the environment and human health [5, 6]. Moreover, it has been demonstrated that BTA is efficient when applied on bare copper but not as efficient when applied on bare bronze [7]. Thus it was necessary to find alternative compounds. Silane-based inhibitors (already successfully tested on copper and other metallic substrates [8]), were taken into consideration as a non-toxic, environmentally friendly alternative to BTA derivatives for bronze protection. The purpose of this thesis was based on the assessment of the efficiency of a selected compound, to protect the bronze against corrosion, which is the 3-mercapto-propyl-trimethoxy-silane (PropS-SH). It was selected thanks to the collaboration with the Corrosion Studies Centre “Aldo Daccò” at the Università di Ferrara. Since previous studies [9, 10, 11] demonstrated that the addition of nanoparticles to silane-based inhibitors leads to an increase of the protective efficiency, we also wanted to evaluate the influence of the addition of CeO2, La2O3, TiO2 nanoparticles on the protective efficiency of 3-mercapto-propyl-trimethoxy-silane, applied on pre-patinated bronze surfaces. This study is the first section of the thesis. Since restorers have to work on patinated bronzes and not on bare metal (except for contemporary art), it is important to be able to recreate the patina, under laboratory conditions, either in sheltered or unsheltered conditions to test the coating and to obtain reliable results. Therefore, at the University of Bologna, different devices have been designed to simulate the real outdoor conditions and to create a patina which is representative of real application conditions of inhibitor or protective treatments. In particular, accelerated ageing devices by wet & dry (simulating the action of stagnant rain in sheltered areas [12]) and by dropping (simulating the leaching action of the rain in unsheltered areas [1]) tests were used. In the present work, we used the dropping test as a method to produce pre-patinated bronze surfaces for the application of a candidate inhibitor as well as for evaluating its protective efficiency on aged bronze (unsheltered areas). In this thesis, gilded bronzes were also studied. When they are exposed to the outside environment, a corrosion phenomenon appears which is due to the electrochemical couple gold/copper where copper is the anode. In the presence of an electrolyte, this phenomenon results in the formation of corrosion products than will cause a blistering of the gold (or a break-up and loss of the film in some cases). Moreover, because of the diffusion of the copper salts to the surface, aggregates and a greenish film will be formed on the surface of the sample [13]. By coating gilded samples with PropS-SH and PropS-SH containing nano-particles and carrying out accelerated ageing by the dropping test, a discussion is possible on the effectiveness of this coating, either with nano-particles or not, against the corrosion process. This part is the section 2 of this thesis. Finally, a discussion about laser treatment aiming at the assessment of reversibility/re-applicability of the PropS-SH coating can be found in section 3 of this thesis. Because the protective layer loses its efficiency with time, it is necessary to find a way of removing the silane layer, before applying a new one on the “bare” patina. One request is to minimize the damages that a laser treatment would create on the patina. Therefore, different laser fluences (energy/surface) were applied on the sample surface during the treatment process in order to find the best range of fluence. In particular, we made a characterization of surfaces before and after removal of PropS-SH (applied on a naturally patinated surface, and subsequently aged by natural exposure) with laser methods. The laser removal treatment was done by the CNR Institute of Applied Physics “Nello Carrara” of Sesto Fiorentino in Florence. In all the three sections of the thesis, a range of non-destructive spectroscopic methods (Scanning Electron Microscopy with Energy Dispersive Spectroscopy (SEM-EDS), μ-Raman spectroscopy, X-Ray diffractometry (XRD)) were used for characterizing the corroded surfaces. AAS (Atomic Absorption Spectroscopy) was used to analyze the ageing solutions from the dropping test in sections 1 and 2.

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Upgrade of biomass to valuable chemicals is a central topic in modern research due to the high availability and low price of this feedstock. For the difficulties in biomass treatment, different pathways are still under investigation. A promising way is in the photodegradation, because it can lead to greener transformation processes with the use of solar light as a renewable resource. The aim of my work was the research of a photocatalyst for the hydrolysis of cellobiose under visible irradiation. Cellobiose was selected because it is a model molecule for biomass depolymerisation studies. Different titania crystalline structures were studied to find the most active phase. Furthermore, to enhance the absorption of this semiconductor in the visible range, noble metal nanoparticles were immobilized on titania. Gold and silver were chosen because they present a Surface Plasmon Resonance band and they are active metals in several photocatalytic reactions. The immobilized catalysts were synthesized following different methods to optimize the synthetic steps and to achieve better performances. For the same purpose the alloying effect between gold and silver nanoparticles was examined.

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The demand of energy, fuels and chemicals is increasing due to the strong growth of some countries in the developing world and the development of the world economy. Unfortunately, the general picture derived sparked an exponential increase in crude oil prices with a consequent increase of the chemical, by-products and energy, depleting the global market. Nowadays biomass are the most promising alternative to fossil fuels for the production of chemicals and fuels. In this work, the development of three different catalytic processes for the valorization of biomass-derived has been investigated. 5-hydroxymethylfurfural oxidation was studied under mild reaction condition using gold and gold/copper based catalysts synthetized from pre-formed nanoparticles and supported onto TiO2 and CeO2. The analysis conducted on catalysts showed the formation of alloys gold/copper and a strong synergistic effect between the two metals. For this reason the bimetallic catalysts supported on titania showed a higher catalytic activity respect to the monometallic catalysts. The process for the production of 2,5-bishydroxymethyl furan (BHMF) was also optimized by means the 5-hydroxymethylfurfural hydrogenation using the Shvo complex. Complete conversion of HMF was achieved working at 90 °C and 10 bar of hydrogen. The complex was found to be re-usable for at least three catalytic cycles without suffering any type of deactivation. Finally, the hydrogenation of furfural and HMF was carried out, developing the process of hydrogen transfer by using MgO as a catalyst and methanol as a hydrogen donor. Quantitative yields to alcohols have been achieved in a few hours working in mild condition: 160 °C and at autogenous pressure. The only by-products formed were light products such as CO, CO2 and CH4 (products derived from methanol transformation), easily separable from the reaction solution depressurizing the reactor.