990 resultados para IR(III)
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Quantum-chemistry methods were explored to investigate the electronic structures, injection and transport properties, absorption and phosphorescence mechanism of a series of blue-emitting Ir(III) complexes {[(F-2-ppy)(2)Ir(pta -X/pyN4)], where F-2-ppy = (2,4-difluoro)phenylpyridine; pta = pyridine-1,2,4-triazole; X = phenyl(1); p-tolyl (2); 2,6-difluororophenyl (3); -CF3 (4), and pyN4 = pyridine-1,2,4-tetrazolate (5)}, which are used as emitters in organic light-emitting diodes (OLEDs). The mobility of hole and electron were studied computationally based on the Marcus theory. Calculations of Ionization potentials (IPs) and electron affinities (EAs) were used to evaluate the injection abilities of holes and electrons into these complexes.
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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Diodi organici emettitori di luce bianca (WOLEDs) sono dei dispositivi promettenti per la realizzazione di sorgenti luminose a basso consumo di energia, in quanto essi combinano un’alta efficienza e bassi costi di produzione con l’interessante caratteristica di poter produrre grandi superfici che emettono luce bianca di buona qualità. Tuttavia, la durata, le prestazioni e i costi devono ancora essere ottimizzati affinché i WOLEDs possano diventare commercialmente competitivi con le altre più comuni fonti di illuminazione; in particolare è necessario migliorare la stabilità e l’efficienza degli emettitori. Nella presente tesi viene trattata la sintesi di molecole organometalliche a singolo componente per ottenere un’elettroluminescenza di un bianco più puro possibile. In particolare l’attenzione è stata rivolta all’ottenimento di complessi eterometallici Ir-Eu. Sono stati sintetizzati tre diversi dimeri di Ir (III), con sistemi fenilpiridinici variamente fluorurati come leganti; a secondo del tipo di legante si hanno delle variazioni delle proprietà fotofisiche del complesso di Ir (III) successivamente prodotto. In seguito sono stati sintetizzati leganti bifunzionali contenenti un’unità isocianuro (in grado di coordinare selettivamente l’Iridio) e un gruppo acetilacetonato (in grado di coordinare selettivamente l’Europio). Tali leganti sono stati poi impiegati per formare il complesso di Eu (III). Infine, la reazione tra i dimeri di Ir (III) e il complesso di Eu (III) ha portato alla formazione dei complessi eterometallici Ir-Eu, che sono stati poi caratterizzati sia strutturalmente che fotofisicamente. Grazie ai due diversi centri emissivi presenti nella stessa molecola si è ottenuta una complessiva luce bianca.
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In questo lavoro di tesi sperimentale si è sintetizzata e caratterizzata la prima classe di complessi tetrazolici di Ir(III) anionici con formula generale [Ir(C^N)2(L)2]-, in cui oltre ai leganti ciclometallanti ”C^N” quali 2-fenilpiridinato (ppy) o 2-(2,4-difluorofenil)piridinato (F2ppy), sono stati introdotti due anioni tetrazolato (L) come il 5-fenil tetrazolato (Tph) oppure 5-(4-cianofenil) tetrazolato (TphCN). I complessi di Ir(III) anionici ottenuti si sono mostrati intensamente fosforescenti, con emissioni centrate nella regione del blu o del verde (460 < λmax<520 nm). I derivati anionici sono stati poi combinati con complessi Ir(III) tetrazolici cationici in grado di fornire emissione nella regione del rosso (λmax > 650 nm), formando così i primi esempi di coppie ioniche (“soft salts”) a matrice puramente tetrazolica. In tutti i casi si è osservato come il colore emesso da parte dei soft salts sia il risultato di una vera propria sintesi additiva delle emissioni derivanti da componenti ioniche con proprietà fotoemittive differenti. La sostanziale assenza di fenomeni di energy o electron transfer tra la componente anionica e cationica e il giusto bilancio tra le emissioni blu o verdi e rosse si sono tradotte, in taluni casi, nell’ottenimento di luce bianca, con la possibilità di variare ulteriormente i colori emessi in seguito all’allontanamento dell’ossigeno molecolare disciolto nelle soluzioni dei soft salts stessi.
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Negli ultimi anni si è osservato un crescente sviluppo della ricerca nel campo dei materiali luminescenti per le loro diverse applicazioni reali e potenziali, fra cui l’impiego in dispositivi elettroluminescenti, quali OLEDs (Organic Light-Emitting Diodes) e LECs (Light-Emitting Electrochemical Cells). In modo particolare, si rivolge grande attenzione ai complessi ciclometallati di Ir(III) grazie alle peculiari caratteristiche che li contraddistinguono fra i materiali luminescenti, come l'emissione fosforescente, alte rese quantiche di emissione, lunghi tempi di vita e buona stabilità nei dispositivi. Oltre a tali caratteristiche uno dei principali vantaggi presentati dai complessi di Ir(III) è la possibilità di modulare la lunghezza d'onda di emissione modificando la struttura dei leganti ciclometallanti e ancillari. Considerata la versatilità di questi sistemi e la loro conseguente rilevanza, diverse sono state le strategie applicate per l'ottenimento di complessi di Ir(III) generalmente neutri e cationici; al contrario pochi esempi di complessi di Ir(III) anionici sono attualmente riportati in letteratura. Lo scopo del mio lavoro di tesi è stato quindi quello di sintetizzare tre nuovi complessi anionici luminescenti di Ir(III) con tre diversi leganti ciclometallanti. Il piano di lavoro è stato suddiviso in stadi successivi, partendo dalla sintesi dei tre leganti ciclometallanti, impiegati poi nella preparazione dei dimeri di Ir(III) precursori dei miei complessi; infine facendo reagire questi ultimi con un legante ancillare bisanionico, derivato dal di(1H-tetrazol-5-il)metano, si è giunti all'ottenimento di tre complessi anionici luminescenti di Ir(III). Dopo questa prima parte, il lavoro di tesi è proseguito con la caratterizzazione spettroscopica dei tre complessi anionici e la determinazione delle loro proprietà fotofisiche tramite la registrazione di spettri di assorbimento, di emissione e la determinazione delle rese quantiche di emissione e dei tempi di vita. Infine si è preparato un “soft salt” costituito da un complesso anionico e uno cationico di Ir(III) le cui caratteristiche sono tutt'ora oggetto di studio del gruppo di ricerca presso il quale ho svolto il mio lavoro di tesi.
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In the last decades, cyclometalated Ir(III) complexes have drawn a large interest for their unique properties: they are excellent triplet state emitters, thus the emission is phosphorescent in nature; typically high quantum yields and good stability make them good candidates for luminescent materials. Moreover, through an opportune choice of the ligands, it is possible to tune the emission along the whole visible spectra. Thanks to these interesting features, Ir(III) complexes have found different applications in several areas of applied science, from OLEDs to bioimaging. In particular, regarding the second application, a remarkable red-shift in the emission is required, in order to minimize the problem of the tissue penetration and the possible damages for the organisms. With the aim of synthesizing a new family of NIR emitting Ir(III) complexes, we envisaged the possibility to use for the first time 2-(1H-tetrazol-1-yl)pyridine as bidentate ligand able to provide the required red-shift of the emission of the final complexes. Exploiting the versatility of the ligand, I prepared two different families of heteroleptic Ir(III) complexes. In detail, in the first case the 2-(1H-tetrazol-1-yl)pyridine was used as bis-chelating N^N ligand, leading to cationic complexes, while in the second case it was used as cyclometalating C^N ligand, giving neutral complexes. The structures of the prepared molecules have been characterised by NMR spectroscopy and mass spectrometry. Moreover, the neutral complexes’ emissive properties have been measured: emission spectra have been recorded in solution at both room temperature and 77K, as well as in PMMA matrix. DFT calculation has then been performed and the obtained results have been compared to experimental ones.
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With the target to design and develop new functionalized green triplet light emitters that possess distinctive electronic properties for robust and highly efficient phosphorescent organic light-emitting diodes (PHOLEDs), a series of bluish-green to yellow-green phosphorescent tris-cyclometalated homoleptic iridium(III) complexes [Ir(ppy-X)(3)] (X=SiPh3, GePh3, NPh2, POPh2, OPh, SPh, SO2Ph, Hppy=2-phenylpyridine) have been synthesized and fully characterized by spectroscopic, redox, and photophysical methods
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The synthesis, isomeric studies, and photophysical characterization of a series of multifunctional cyclometalated iridium(III) complexes containing a fluoro- or methyl-substituted 2[3-(N-plienylcarbazolyl)]pyridine molecular framework are presented. All of the complexes are thermally stable solids and highly efficient electrophosphors. The optical, electrochemical, photo-, and electrophosphorescence traits of these iridium phosphors have been studied in terms of the electronic nature and coordinating site of the aryl or pyridyl ring substituents. The correlation between the functional properties of these phosphors and the results of density functional theory calculations was made. Arising from the propensity of the electron-rich carbazolyl group to facilitate hole injection/transport, the presence of such a moiety can increase the highest-occupied molecular orbital levels and improve the charge balance in the resulting complexes relative to the parent phosphor with 2-phenylpyridine ligands. Remarkably, the excited-state properties can be manipulated through ligand and substituent effects that allow the tuning of phosphorescence energies from bluish green to deep red.
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By fusing an electron-deficient ring system with the phenyl ring of a 2-phenylpyridine (ppy)-type ligand, a new and synthetically versatile strategy for the phosphorescence color tuning of cyclometalated iridium(III) and platinum(II) metallophosphors has been established. Two robust red electrophosphors with enhanced electron-injection/electron-transporting features were prepared by using an electron-trapping fluoren-9-one chromophore in the ligand design. The thermal, photophysical, redox and electrophosphorescent properties of these complexes are reported. These exciting results can be attributed to a switch of the metal-to-ligand charge-transfer (MLCT) character of the transition from the pyridyl groups in the traditional Ir-III or Pt-II ppy-type complexes to the electron-deficient ring core, and the spectral assignments corroborate well with the electrochemical data as well as the timedependent density functional theory (TD-DFT) calculations. The electron-withdrawing character of the fused ring results in much more stable MLCT states, inducing a substantial red-shift of the triplet emission energy from yellow to red for the Ir-III complex and even green to red for the PtII counterpart.
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One mu-dichloro bridged diiridium complex and three mononuclear iridium(III) complexes based on the 1,3,4-oxadiazole derivatives as cyclometalated ligands and acetylacetonate (acac) or dithiolates O,O'-diethyldithiophosphate (Et(2)dtp) or N,N'-diethyldithiocarbamate (Et(2)dtc) as ancillary ligands have been synthesized and systematically studied by X-ray diffraction analysis. The results reveal that three mononuclear complexes all adopt distorted octahedral coordination geometry around the iridium center by two chelating ligands with cis-C-C and trans-N-N dispositions, which have the same coordination mode as the diiridium dimer. The dinuclear complex crystallizes in the monoclinic system and space group C2/c, whereas three mononuclear iridium complexes are all triclinic system and space group P(1) over bar. In the stacking structure of the dimer, one-dimensional tape-like chains along the b-axis are formed by hydrogen bondings, which are strengthened by pi stacking interactions between phenyl rings of 1,3,4-oxadiazole ligands. Then these chains assemble a three-dimensional alternating peak and valley fused wave-shape structure. In each stacking structure of three mononuclear complexes, two molecules form a dimer by the C-H center dot center dot center dot O hydrogen bondings, and these dimers are connected by pi stacking interactions along the b-axis, constructing a zigzag chain.
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A series of novel cyclometalated iridium(III) complexes bearing 2,4-diphenylquinoline ligands with fluorinated substituent were prepared and characterized by elemental analysis, NMR and mass spectroscopy. The cyclic voltammetry, absorption, emission and electroluminescent properties of these complexes were systematically investigated. Electrochemical studies showed that the oxidation of the fluorinated complexes occurred at more positive potentials (in the range 0.57-0.69 V) than the unfluorinated complex 1 (0.42 V). In view of the energy level, the lowering of the LUMO by fluorination is significantly less than that of the HOMO. The weak and low energies absorption bands in the range of 300-600 nm are well resolved, likely associated with MLCT and (3)pi-pi* transitions. These complexes show strong orange red emission both in the solution and solid state. The emission maxima of the fluorinated complexes showed blue shift by 9, 24 and 15 nm for 2, 3 and 4, respectively, with respect to the unfluorinated analogous 1. Multilayered organic light-emitting diodes (OLEDs) were fabricated by using the complexes as dopant materials. Significantly higher performance and lower turn-on voltage were achieved using the fluorinated complexes as the emitter than that using the unfluorinated counterpart 1 under the same doping level.
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Three new iridium (III) complexes with two cyclometalated (CN)-N-boolean AND ligands (imidazole, oxazole and thiazole-based, respectively) and one acetylacetone (acac) ancillary ligand have been synthesized and fully characterized. The structure of the thiazole-based complex has been determined by single crystal X-ray diffraction analysis. The Ir center was located in a distorted octahedral environment by three chelating ligands with the N-N in the trans and C-C in the cis configuration. By changing the hetero-atom of (CN)-N-boolean AND ligands the order S, O and N, a marked and systematic hypsochromic shift of the maximum emission peak of the complexes was realized. The imidazole-based complex emits at a wavelength of 500 nm, which is in the blue to green region. The tuning of emission wavelengths is consistent with the variation of the energy gap estimated front electrochemistry results. An electroluminescent device using the thiazole-based complex as a dopant in the emitting layer has been fabricated. A highly efficient yellow emission with a maximum luminous efficiency of 9.8 cd/A at a current density of 24.2 mA/cm(2) and a maximum brightness of 7985 cd/m(2) at 19.6 V has been achieved.
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In this experimental thesis, two luminescent Ir(III) and Re(I) complexes which have a terminal alkynyl group on the tetrazole ligand were prepared. The aim was to use them as building blocks, in order to synthesize more complex structures. We explored two simple reactions: the first one was a coupling, for the formation of Ir(III)/Au(III) and Re(I)/Au(III) hetero binuclear complexes, and the second was a 1,3-dipolar Cu(I)-catalyzed “Click” cycloaddition, between the terminal alkyne and azide. The synthesized products were characterized through photophysical analysis, evaluating how the photoemissive properties of these substrates were affected by the formation of more complex structures. In questo lavoro di tesi sperimentale sono stati preparati due complessi luminescenti di Ir(III) e Re(I) che presentano un alchino terminale sul legante tetrazolico. Lo scopo è stato quello di utilizzarli come building blocks per la sintesi di strutture più complesse. Sono state esplorate due semplici reazioni: la prima di coupling, per la formazione di complessi etero binucleari Ir(III)/Au(III) e Re(I)/Au(III), e la seconda di “click”, ossia una cicloaddizione 1,3-dipolare Cu(I) catalizzata tra l’alchino terminale e un’azide. I prodotti sintetizzati sono stati caratterizzati attraverso analisi fotofisiche, valutando come le proprietà fotoemissive di questi substrati siano influenzate in seguito alla formazione di strutture più complesse.
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In the modern society, light is mostly powered by electricity which lead to a significant increase of the global energy consumption. In order to reduce it, different kinds of electric lamps have been developed over the years; it is now accepted that phosphorescence-based OLEDs offer many advantages over existing light technologies. Iridium complexes are considered excellent candidates for bright materials by virtue of the possibility to easily tune the wavelength of the emitted radiation, by appropriate modifications of the nature of the ligands. It is important to note that the synthesis of Ir(III) blue-emitting complexes is a very challenging goal, because of wide HOMO-LUMO gaps needed for produce a deep blue emission. During my thesis I planned the synthesis of two different series of new Ir(III) heteroleptic complexes, the C and the N series, using cyclometalating ligands containing an increasing number of nitrogens in inverse and regular position. I successfully performed in the synthesis of the required four ligands, i.e. 1-methyl-4-phenyl-1H-imidazole (2), 4-phenyl-1-methyl-1,2,3-triazole (3), 1-phenyl-1H-1,2,3-triazole (6) and 1-phenyl-1H-tetrazole (7), that differ in the number of nitrogens present in the heterocyclic ring and in the position of the phenyl ring. Therefore the cyclometalation of the obtained ligands to get the corresponding Ir(III)-complexes was attempted. I succeeded in the synthesis of two Ir(III)-complexes of the C series, and I carried out various attempts to set up the appropriate reaction conditions to get the remaining desired derivatives. The work is still in progress, and once all the desired complexes will be synthesized and characterized, a correlation between their structure and their emitting properties could be formulated analysing and comparing the photophysical data of the real compounds.