922 resultados para piezoelectricity,energy harvesting,SSHI,micropower,power conversion
Resumo:
This work examines the effect of copper nanoparticles (Cu NPs) on the photocurrent efficiency of silicon photovoltaic (Si PV) devices. An optimized synthesis of stable Cu NPs is reported together with a procedure for their immobilization on the Si PV surface. A comprehensive analysis of the photocurrent and power dependence of the Cu NPs surface coverage and size is presented. A decrease in photoconversion was observed for wavelengths shorter than similar to 500 nm, due to the Cu interband absorption. In the low surface coverage limit, where the level of aggregation was found to be low, the surface plasmon resonance absorption dominates leading to a modest effect on the photocurrent response. As the number of aggregates increased with the surface coverage, the photocurrent efficiency also increased, and a maximum enhancement power conversion of 16% was found for a 54 +/- 6 NPs per mu m(2) PV cell. This enhancement was attributed to SPR light scattering and trapping into the Si PV device. Higher surface coverage yielded numerous aggregates which acted as a bulk coating and caused a decrease in both photocurrent and power measurements.
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Optical properties of intentionally disordered multiple quantum well (QW) system embedded in a wide AlGaAs parabolic well were investigated by photoluminescence (PL) measurements as functions of the laser excitation power and the temperature. The characterization of the carriers localized in the individual wells was allowed due to the artificial disorder that caused spectral separation of the photoluminescence lines emitted by different wells. We observed that the photoluminescence peak intensity from each quantum well shifted to high energy as the excitation power was increased. This blue-shift is associated with the filling of localized states in the valence band tail. We also found that the dependence of the peak intensity on the temperature is very sensitive to the excitation power. The temperature dependence of the photoluminescence peak energy from each QW was well fitted using a model that takes into account the thermal redistribution of the localized carriers. Our results demonstrate that the band tails in the studied structures are caused by alloy potential fluctuations and the band tail states dominate the emission from the peripheral wells. (C) 2012 American Institute of Physics. [http://dx.doi.org/10.1063/1.4730769]
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A new series of donor acceptor copolymers were synthesized via the Witting route and applied as an active layer in organic thin-films solar cells. These copolymers are composed of fluorene thiophene and phenylene thiophene units. The ratio between those was systematically varied, and copolymers containing 0%, 50%, and 75% of phenylene thiophene were characterized and evaluated when used in photovoltaic devices. The copolymers' composition, photophysical, electrical, and morphological properties are addressed and correlated with device performance. The 50% copolymer ratio was found to be the best copolymer of the series, yielding a power conversion efficiency (PCE) under air mass (AM) 1.5 conditions of 2.4% in the bilayer heterojunction with the C-60 molecule. Aiming at flexible electronics applications, solutions based on the heterojunction of this copolymer with PCBM (6,6-phenyl-C-61-butyric acid methyl ester) were also successfully deposited using an inkjet printing method and used as an active layer in solar cells.
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The proposed role of anthocyanins in protecting plants against excess solar radiation is consistent with the occurrence of ultrafast (525 ps) excited-state proton transfer as the major de-excitation pathway of these molecules. However, because natural anthocyanins absorb mainly in the visible region of the spectra, with only a narrow absorption band in the UV-B region, this highly efficient deactivation mechanism would essentially only protect the plant from visible light. On the other hand, ground-state charge-transfer complexes of anthocyanins with naturally occurring electron-donor co-pigments, such as hydroxylated flavones, flavonoids, and hydroxycinnamic or benzoic acids, do exhibit high UV-B absorptivities that complement that of the anthocyanins. In this work, we report a comparative study of the photophysics of the naturally occurring anthocyanin cyanin, intermolecular cyanincoumaric acid complexes, and an acylated anthocyanin, that is, cyanin with a pendant coumaric ester co-pigment. Both inter- and intramolecular anthocyaninco-pigment complexes are shown to have ultrafast energy dissipation pathways comparable to those of model flavylium cationco-pigment complexes. However, from the standpoint of photoprotection, the results indicate that the covalent attachment of co-pigment molecules to the anthocyanin represents a much more efficient strategy by providing the plant with significant UV-B absorption capacity and at the same time coupling this absorption to efficient energy dissipation pathways (ultrafast internal conversion of the complexed form and fast energy transfer from the excited co-pigment to the anthocyanin followed by adiabatic proton transfer) that avoid net photochemical damage.
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Sensor and actuator based on laminated piezocomposite shells have shown increasing demand in the field of smart structures. The distribution of piezoelectric material within material layers affects the performance of these structures; therefore, its amount, shape, size, placement, and polarization should be simultaneously considered in an optimization problem. In addition, previous works suggest the concept of laminated piezocomposite structure that includes fiber-reinforced composite layer can increase the performance of these piezoelectric transducers; however, the design optimization of these devices has not been fully explored yet. Thus, this work aims the development of a methodology using topology optimization techniques for static design of laminated piezocomposite shell structures by considering the optimization of piezoelectric material and polarization distributions together with the optimization of the fiber angle of the composite orthotropic layers, which is free to assume different values along the same composite layer. The finite element model is based on the laminated piezoelectric shell theory, using the degenerate three-dimensional solid approach and first-order shell theory kinematics that accounts for the transverse shear deformation and rotary inertia effects. The topology optimization formulation is implemented by combining the piezoelectric material with penalization and polarization model and the discrete material optimization, where the design variables describe the amount of piezoelectric material and polarization sign at each finite element, with the fiber angles, respectively. Three different objective functions are formulated for the design of actuators, sensors, and energy harvesters. Results of laminated piezocomposite shell transducers are presented to illustrate the method. Copyright (C) 2012 John Wiley & Sons, Ltd.
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In molecular and atomic devices the interaction between electrons and ionic vibrations has an important role in electronic transport. The electron-phonon coupling can cause the loss of the electron's phase coherence, the opening of new conductance channels and the suppression of purely elastic ones. From the technological viewpoint phonons might restrict the efficiency of electronic devices by energy dissipation, causing heating, power loss and instability. The state of the art in electron transport calculations consists in combining ab initio calculations via Density Functional Theory (DFT) with Non-Equilibrium Green's Function formalism (NEGF). In order to include electron-phonon interactions, one needs in principle to include a self-energy scattering term in the open system Hamiltonian which takes into account the effect of the phonons over the electrons and vice versa. Nevertheless this term could be obtained approximately by perturbative methods. In the First Born Approximation one considers only the first order terms of the electronic Green's function expansion. In the Self-Consistent Born Approximation, the interaction self-energy is calculated with the perturbed electronic Green's function in a self-consistent way. In this work we describe how to incorporate the electron-phonon interaction to the SMEAGOL program (Spin and Molecular Electronics in Atomically Generated Orbital Landscapes), an ab initio code for electronic transport based on the combination of DFT + NEGF. This provides a tool for calculating the transport properties of materials' specific system, particularly in molecular electronics. Preliminary results will be presented, showing the effects produced by considering the electron-phonon interaction in nanoscale devices.
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Il contesto generale nel quale è inserito tale elaborato di tesi è la tecnologia RFID; se ne fa una disamina completa, partendo dalla ricostruzione delle tappe storiche che hanno portato alla sua diffusione. Viene data particolare enfasi alle differenze esistenti tra le varie tipologie, alle frequenze a cui possono operare i dispositivi e agli standard legislativi vigenti. Vengono enunciati inoltre i costi dei dispositivi e le critiche verso la tecnologia. L'obiettivo della tesi è quello di valutare la possibilità di realizzare un meccanismo di monitoraggio a breve raggio di dispositivi dotati di rfid: per questo la visione che si da della tecnologia è il più completa possibile. La prerogativa di lunga durata richiesta dal sistema ha portato a valutare se potesse essere utile integrare un meccanismo di recupero energia; per questo si prosegue con una disamina dell'energy harvesting, fornendo dettagli su tutte le fonti da cui è possibile recuperare energia e casi pratici di meccanismi realizzati, sia che questi siano già presenti sul mercato, sia che siano solo risultati di ricerche e prototipi. Si conclude quindi il lavoro valutando le effettive possibilità di realizzazione del sistema, evidenziando le scelte consigliate per una migliore esecuzione.
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In questa tesi vengono analizzati alcuni schemi circuitali di convertitori di micro potenze da generatori termoelettrici sottoposti a gradienti di temperatura limitati. I circuiti, basati su oscillatori step-up in grado di innescarsi con tensioni di alimentazione estremamente basse, sono stati analizzati dal punto di vista teorico e mediante successive simulazioni circuitali. Le potenze ottenibili con gradienti di temperatura inferiori a 10K risultano tipicamente comprese tra qualche uW e qualche decina di uW, con efficienze fino a circa il 40%.
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This thesis focuses on the ceramic process for the production of optical grade transparent materials to be used as laser hosts. In order to be transparent a ceramic material must exhibit a very low concentration of defects. Defects are mainly represented by secondary or grain boundary phases and by residual pores. The strict control of the stoichiometry is mandatory to avoid the formation of secondary phases, whereas residual pores need to be below 150 ppm. In order to fulfill these requirements specific experimental conditions must be combined together. In addition powders need to be nanometric or at least sub-micrometric and extremely pure. On the other hand, nanometric powders aggregate easily and this leads to a poor, not homogeneous packing during shaping by pressing and to the formation of residual pores during sintering. Very fine powders are also difficult to handle and tend to absorb water on the surface. Finally, the powder manipulation (weighting operations, solvent removal, spray drying, shaping, etc), easily introduces impurities. All these features must be fully controlled in order to avoid the formation of defects that work as scattering sources thus decreasing the transparency of the material. The important role played by the processing on the transparency of ceramic materials is often underestimated. In the literature a high level of transparency has been reported by many authors but the description of the experimental process, in particular of the powder treatment and shaping, is seldom extensively described and important information that are necessary to reproduce the described results are often missing. The main goal of the present study therefore is to give additional information on the way the experimental features affect the microstructural evolution of YAG-based ceramics and thus the final properties, in particular transparency. Commercial powders are used to prepare YAG materials doped with Nd or Yb by reactive sintering under high vacuum. These dopants have been selected as the more appropriate for high energy and high peak power lasers. As far as it concerns the powder treatment, the thesis focuses on the influence of the solvent removal technique (rotavapor versus spray drying of suspensions in ethanol), the ball milling duration and speed, suspension concentration, solvent ratio, type and amount of dispersant. The influence of the powder type and process on the powder packing as well as the pressure conditions during shaping by pressing are also described. Finally calcination, sintering under high vacuum and in clean atmosphere, and post sintering cycles are studied and related to the final microstructure analyzed by SEM-EDS and HR-TEM, and to the optical and laser properties.
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Plastic solar cells bear the potential for large-scale power generation based on flexible, lightweight, inexpensive materials. Since the discovery of the photo-induced electron transfer from a conjugated polymer (electron-donor) to fullerene or its derivatives molecules (electron-acceptors), followed by the introduction of the bulk heterojunction concept which means donors and acceptors blended together to realize the fotoactive layer, materials and deposition techniques have been extensively studied. In this work, electrochemical-deposition methods of polymeric conductive films were studied in order to realize bulk heterojunction solar cells. Indium Tin Oxide (ITO) glass electrodes modified with a thin layer of poly(3,4-ethylenedioxythiophene) (PEDOT) were electrochemically prepared under potentiodynamic and potentiostatic conditions; then those techniques were applied for the electrochemical co-deposition of donor and acceptor on modified ITO electrode to produce the active layer (blend). For the deposition of the electron-donor polymer the electropolymerization of many functionalized thiophene monomers was investigated while, as regards acceptors, fullerene was used first, then the study was focused on its derivative PCBM ([6,6]-phenyl-C61-butyric acid methyl ester). The polymeric films obtained (PEDOT and blend) were electrochemically and spectrophotometrically characterized and the film thicknesses were evaluated by atomic force microscopy (AFM). Finally, to check the performances and the efficiency of the realized solar cells, tests were carried out under standard conditions. Nowadays bulk heterojunction solar cells are still poorly efficient to be competitively commercialized. A challenge will be to find new materials and better deposition techniques in order to obtain better performances. The research has led to several breakthroughs in efficiency, with a power conversion efficiency approaching 5 %. The efficiency of the solar cells produced in this work is even lower (lower than 1 %). Despite all, solar cells of this type are interesting and may represent a cheaper and easier alternative to traditional silicon-based solar panels.
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In questa tesi viene illustrato il progetto di un sistema di controllo per uno shaker elettrodinamico. L'architettura è basata su sistemi a microcontrollore Microchip PIC e implementa un controllo in retroazione al fine di ottenere una elevata precisione nell'ampiezza dell'oscillazione. Un prototipo del sistema è stato implementato con componenti commerciali. Vengono presentati i risultati del test funzionale dei sotto-circuiti realizzati.
Resumo:
Nel presente elaborato è trattato l'innesco di un sistema di recupero ambientale di energia da sorgenti a radiofrequenza, captate tramite rectenna, nell'ambito di un sistema completamente autonomo dal punto di vista energetico, quindi non dotato di batteria ricaricabile interna. Dopo un'analisi dei problemi da affrontare e delle possibili soluzioni tecniche per gestire le micropotenze restituite dalla rectenna, ci si concentra in modo preferenziale sul ruolo del condensatore posto sulla porta d'ingresso dell'oscillatore di Meissner, che è utilizzato come elevatore di tensione per attivare gli stadi successivi. Sfruttando le esperienze con lo stesso oscillatore pilotato da altri sensori di energy harvesting, è possibile determinare approssimativamente se il circuito si presta o meno all'utilizzo con le rectenne nei campi RF, suggerendo eventuali migliorie da apportare per facilitarne il funzionamento.
Resumo:
L'energy harvesting è un processo in cui l'energia ambientale comunemente disponibile viene catturata mediante opportuni trasduttori e circuiti elettronici per essere convertita in energia elettrica utilizzabile. Il progetto descritto sarà una estensione ed integrazione di un sistema già esistente, per la riproduzione attraverso un sistema elettrodinamico vibrante (shaker), di vibrazioni acquisite dall'ambiente circostante in situazioni di riferimento tipiche (esempio le vibrazioni prodotte da un veicolo in movimento o un uomo in corsa), al fine di caratterizzare trasduttori piezoelettrici per studiarne il funzionamento, le caratteristiche e il loro comportamento. Lo scopo finale è quello di realizzare un sistema stand-alone che sia in grado di riprodurre e controllare in maniera affidabile le vibrazioni imposte da un sistema vibrante, al fine di realizzare un sistema di caratterizzazione per dispositivi di energy harvesting vibrazionale. In questo progetto, l’intera gestione del processo viene affidata ad un microcontrollore presente sulla scheda di controllo, il quale consente in tempo reale la visualizzazione delle forme d’onda oggetto di studio mediante un display grafico, l’elaborazione dei dati presenti nel sistema nonché la possibilità di caricare e salvare dei dati significativi sulla memoria del sistema durante le fasi di testing. Le caratteristiche implementate rendono il sistema facile da usare. Successivamente verranno descritte le specifiche tecniche necessariamente da rispettare per la realizzazione di un sistema che permetta di riprodurre e fornire dati attendibili, la struttura di visualizzazione grafica del sistema, la parte di condizionamento del segnale e i principi teorici del controllo ad anello chiuso.
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Questo lavoro si è occupato della ricerca e progettazione di un'antenna UWB per la realizzazione di un tag RFID e si colloca all'interno del progetto GRETA (GREen TAgs), finanziato dal MIUR. Le principali caratteristiche richieste al green tag sono: dimensioni complessive di massimo 4-5 cm, assenza di batterie e compatibilità con l'ambiente. L'eco-compatibilità viene garantita tramite la realizzazione dell'antenna al di sopra di un substrato di carta; i limiti derivanti dall'assenza di batterie vengono invece sopperiti tramite realizzazione di energy harvesting, al fine di raggiungere una completa autonomia energetica. Viene sfruttata la tecnica UWB per la comunicazione nella banda (3.1-4.8 GHz); l'energy harvesting si effettua invece a 868 MHz. Sono infine stati ricavati alcuni primi risultati relativi alla potenza rettificabile con la soluzione proposta, tramite realizzazione di un opportuno circuito rettificatore.