953 resultados para irradiation by microwave


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The present study reports the effect a cell permeabilizer, polyethylenimine (PEI) has on the photodynamic effect of methylene blue (MB) and nuclear fast red (NFR) in the presence of hydrogen peroxide (H2O2). The photosensitized destruction of the algae Chlorella vulgaris under irradiation with visible light is examined. The photodynamic effect was investigated under aerobic and anaerobic conditions. The presence of a permeabilizer during the photosensitized destruction of C. vulgaris does not enhance the activity of the MB, MB/H2O2 system or the NFR, NFR/H2O 2 system under aerobic conditions. However under anaerobic conditions we have determined that when a cell permeabilizer was added to the MB/H 2O2 system, the photosensitized destruction of C. vulgaris proceeded via a combination of Type I and Type II mechanisms. The presence of PEI enforces MB/H2O2 to be active toward the destruction of C. vulgaris whether oxygen is present or absent. Under aerobic and anaerobic conditions the activity of NFR was suppressed in the presence of PEI as a result of electrostatic interactions between the photosensitizer and the cell permeabilizer. The decrease in fluorescence recorded is indicative of destruction of the chlorophyll a pigment. 

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Biofilm growth on stone surfaces is a significant contributing factor to stone biodeterioration. Current market based biocides are hazardous to the environment and to public health. We have investigated the photo-dynamic effect of methylene blue (MB) in the presence of hydrogen peroxide (H2O2) on the destruction of the cyanobacterium Synechococcus leopoliensis (S. leopoliensis) under irradiation with visible light. Data presented in this paper illustrate that illumination of S. leopoliensis in the presence of a photosensitiser (MB) and H2O2 results in the decomposition of both the cyanobacterium and the photosensitiser. The presence of MB and H2O2 affects the viability of the photosensitiser and the cyanobacterium with the fluorescence of both decreasing by 80% over the irradiation time investigated. The photo-dynamic effect was observed under aerobic and anaerobic conditions indicating that oxygen was not necessary for the process. This novel combination could be effective for the remediation of biofilm colonised stone surfaces

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In this work, a laser-produced plasma extreme ultraviolet source and a free electron laser were used to create Ne photo-ionized plasmas. In both cases, a radiation beam was focused onto a gas stream injected into a vacuum chamber synchronously with the radiation pulse. Extreme ultraviolet radiation from the plasma spanned a wide spectral range with pronounced maximum centered at lambda = 11 +/- 1 nm while the free electron laser pulses were emitted at a wavelength of 32 nm. The power density of the focused plasma radiation was approximately 2 x 10(7) W/cm(2) and was seven orders of magnitude lower compared with the focused free electron laser beam. Radiation fluences in both experimental conditions were comparable. Despite quite different spectral characteristics and extremely different power densities, emission spectra of both photo-ionized plasmas consist of the same spectral lines within a wavelength range of 20 to 50 nm, however, with different relative intensities of the corresponding lines. The dominating spectral lines originated from singly charged ions (Ne II); however, Ne III lines were also detected. Additionally, computer simulations of the emission spectra, obtained for photo-ionized plasmas, driven by the plasma extreme ultraviolet source, were performed. The corresponding measured and calculated spectra are presented. An electron temperature and ionic composition were estimated. Differences between the experimental spectra, obtained for both irradiation conditions, were analyzed. The differences were attributed mainly to different energies of driving photons.

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The four DNA nucleosides guanosine, adenosine, cytidine and thymidine have been produced in the gas phase by a laser thermal desorption source, and irradiated by a beam of protons with 5 keV kinetic energy. The molecular ions as well as energetic neutrals formed have been analyzed by mass spectrometry in order to shed light on the ionization and fragmentation processes triggered by proton collision. A range of 8-20 eV has been estimated for the binding energy of the electron captured by the proton. Glycosidic bond cleavage between the base and sugar has been observed with a high probability for all nucleosides, resulting in predominantly intact base ions for guanosine, adenosine, and cytidine but not for thymidine where intact sugar ions are dominant. This behavior is influenced by the ionization energies of the nucleobases (G < A < C < T), which seems to determine the localization of the charge following the initial ionization. This charge transfer process can also be inferred from the production of protonated base ions, which have a similar dependence on the base ionization potential. Other dissociation pathways have also been identified, including further fragmentation of the base and sugar moieties for thymidine and guanosine, respectively, and partial breakup of the sugar ring without glycosidic bond cleavage mainly for adenosine and cytidine. These results show that charge localization following ionization by proton irradiation is important in determining dissociation pathways of isolated nucleosides, which could in turn influence direct radiation damage in DNA.

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The adsorption of water and deuterium oxide on TiO2 surfaces was investigated in the dark as well as under UV(A) irradiation using in situ ATR-FTIR spectroscopy under oxygen and oxygen free conditions. Adsorption of H2O-D2O mixtures revealed an isotopic exchange reaction occurring onto the surface of TiO2 in the dark. Under UV(A) irradiation, the amount of both OH and OD groups was found to be increased by the presence of molecular oxygen. Furthermore, the photocatalytic formation of hydroperoxide under oxygenated condition has been recorded utilizing Attenuated Total Reflection Fourier Transformed Infrared (ATR-FTIR) spectroscopy which appeared as new band at 3483 cm-1. Different possible mechanisms are discussed in terms of the source of hydroxyl groups formed and/or hydration water on the TiO2 surface for the photocatalytic reaction and photoinduced hydrophilicity.

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Thermal reactions proceed optimally when they are rapidly heated to the highest tolerable temperature, held there for the shortest possible time and then quenched. This is explained through assessments of reaction kinetics in literature examples and models. Although presently available microwave equipment is better suited to rapid heating than resistance-heated systems, the findings do not depend upon the method of heating. Claims that microwave heated reactions proceed faster and more cleanly than their conventionally heated counterparts are valid only when comparably rapid heating and cooling cannot be obtained by conventional heating. These findings suggest that rigid adherence to the sixth principle of green chemistry, relating to the use of ambient temperature and pressure, may not always afford optimal results. © 2010 The Royal Society of Chemistry.

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Bioresorbable polymers increasingly are the materials of choice for implantable orthopaedic fixation devices. Controlled degradation of these polymers is vital for preservation of mechanical properties during tissue repair and controlled release of incorporated agents such as osteoconductive or anti-microbial additives. The work outlined in this paper investigates the use of low energy electron beam irradiation to surface modify polyhydroxyacid samples incorporating beta tricalcium phosphate (β-TCP). This work uniquely demonstrates that surface modification of bioresorbable polymers through electron beam irradiation allows for the early release of incorporated agents such as bioactive additives. Samples were e-beam irradiated at an energy of 125 keV and doses of either 150 kGy or 500 kGy. Irradiated and non-irradiated samples were degraded in phosphate buffered saline (PBS), to simulate bioresorption, followed by characterisation. The results show that low energy e-beam irradiation enhances surface hydrolytic degradation in comparison to bulk and furthermore allows for earlier release of incorporated calcium via dissolution into the surrounding medium.

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Overexpression of the Bcl-2 proto-oncogene in tumor cells confers resistance against chemotherapeutic drugs. In this study, we describe how the novel pyrrolo-1,5-benzoxazepine compound 7-[[dimethylcarbamoyl]oxy]-6-(2-naphthyl)pyrrolo-[2,1-d] (1,5)-benzoxazepine (PBOX-6) selectively induces apoptosis in Bcl-2-overexpressing cancer cells, whereas it shows no cytotoxic effect on normal peripheral blood mononuclear cells. PBOX-6 overcomes Bcl-2-mediated resistance to apoptosis in chronic myelogenous leukemia (CML) K562 cells by the time- and dose-dependent phosphorylation and inactivation of antiapoptotic Bcl-2 family members Bcl-2 and Bcl-XL. PBOX-6 also induces Bcl-2 phosphorylation and apoptosis in wild-type T leukemia CEM cells and cells overexpressing Bcl-2. This is in contrast to chemotherapeutic agents such as etoposide, actinomycin D, and ultraviolet irradiation, whereby overexpression of Bcl-2 confers resistance against apoptosis. In addition, PBOX-6 induces Bcl-2 phosphorylation and apoptosis in wild-type Jurkat acute lymphoblastic leukemia cells and cells overexpressing Bcl-2. However, Jurkat cells containing a Bcl-2 triple mutant, whereby the principal Bcl-2 phosphorylation sites are mutated to alanine, demonstrate resistance against Bcl-2 phosphorylation and apoptosis. PBOX-6 also induces the early and transient activation of c-Jun NH2-terminal kinase (JNK) in CEM cells. Inhibition of JNK activity prevents Bcl-2 phosphorylation and apoptosis, implicating JNK in the upstream signaling pathway leading to Bcl-2 phosphorylation. Collectively, these findings identify Bcl-2 phosphorylation and inactivation as a critical step in the apoptotic pathway induced by PBOX-6 and highlight its potential as an effective antileukemic agent.

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Ultraviolet-B (UVB) irradiation is known to inhibit lymphocyte activity and consequently to reduce the incidence of graft-versus-host disease (GVHD) in experimental models for allogeneic bone marrow transplantation (BMT). GVHD is frequently associated with morbidity and mortality, but also with the beneficial graft-versus-leukemia (GVL) effect, demonstrated by a reduction in the incidence of leukemia relapse. In this study, we investigated whether UVB treatment of allogeneic T cells could prevent GVHD while sparing the beneficial GVL effect following allogeneic BMT in the Brown Norway myelocytic leukemia (BNML) rat model analogous to human acute myelocytic leukemia (AML). The dose of UVB required to abolish lethal GVHD in the rat allogeneic BMT model (WAG/Rij donors into BN recipients) was 4000 J/m2. However, this UVB dose simultaneously abrogated all GVL activity mediated by the T cells in the graft, while the radio-protective capacity of rat BM cells was strongly reduced. The number of allogeneic BM cells required to protect lethally irradiated BN rats was increased 50 to 100-fold. It is concluded that UVB acts as a non-selective form of T cell inactivation, and that UVB pretreatment of an allogeneic marrow graft is unlikely to be useful clinically as a preventive measure for GVHD, since other means of reduction of the number of functional T cells are less damaging to bone marrow stem cells.

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This review describes an approach to the prevention of graft-versus-host disease (GVHD) and graft rejection following allogeneic BMT that differs from conventional methods. Ultraviolet (UV) irradiation inhibits the proliferative responses of lymphoid cells to mitogens and alloantigens by inactivation of T lymphocytes and dendritic cells, and in animal models this can prevent both GVHD and graft rejection. It is important that the marrow repopulating capacity of haemopoietic stem cells is not damaged by the irradiation process. We have found that polymorphic microsatellite markers are a sensitive way of assessing the impact of UV irradiation on chimerism after BMT in rodents.

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With advancements in the development of visible light responsive catalysts for H2 production frequently being reported, photocatalytic water splitting has become an attractive method as a potential ‘solar fuel generator’. The development of novel photo reactors which can enhance the potential of such catalyst, however, is rarely reported. This is particularly important as many reactor configurations are mass transport limited, which in term limits the efficiency of more effective photocatalysts in larger scale applications. This paper describes the performance of a novel fluidised photo reactor for the production of H2 over two catalysts under UV-Visible light and natural solar illumination. Catalysts Pt-C3N4 and NaTaO3.La were dispersed in the reactor and the rate of H2 was determined by GC-TCD analysis of the gas headspace. The unit was an annular reactor constructed from stainless steel 316 and quartz glass with a propeller located in the base to control fluidisation of powder catalysts. Reactor properties such as propeller rotational speed were found to enhance the photo activity of the system through the elimination of mass transport limitations and increasing light penetration. The optimum conditions for H2 evolution were found to be a propeller rotational speed of 1035 rpm and 144 W of UV-Visible irradiation, which produced a rate of 89 µmol h-1 g-1 over Pt-C3N4. Solar irradiation was provided by the George Ellery Hale Solar Telescope, located at the California Institute of Technology.

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Photocatalytic conversion of cellulose to sugars and carbon dioxide with simultaneous production of hydrogen assisted by cellulose decomposition under UV or solar light irradiation was achieved upon immobilization of cellulose onto a TiO2 photocatalyst. This approach enables production of hydrogen from water without using valuable sacrificial agents, and provides the possibility for recovering sugars as liquid fuels.

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The dynamics of self-generated magnetic B-fields produced following the interaction of a high contrast, high intensity (I > 1019W cm-2) laser beam with thin (3 μm thick) solid (Al or Au) targets is investigated experimentally and numerically. Two main sources drive the growth of B-fields on the target surfaces. B-fields are first driven by laser-generated hot electron currents that relax over ∼10-20 ps. Over longer timescales, the hydrodynamic expansion of the bulk of the target into vacuum also generates B-field induced by non-collinear gradients of density and temperature. The laser irradiation of the target front side strongly localizes the energy deposition at the target front, in contrast to the target rear side, which is heated by fast electrons over a much larger area. This induces an asymmetry in the hydrodynamic expansion between the front and rear target surfaces, and consequently the associated B-fields are found strongly asymmetric. The sole long-lasting (>30 ps) B-fields are the ones growing on the target front surface, where they remain of extremely high strength (∼8-10 MG). These B-fields have been recently put by us in practical use for focusing laser-accelerated protons [B. Albertazzi et al., Rev. Sci. Instrum. 86, 043502 (2015)]; here we analyze in detail their dynamics and structure.

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Compostos do tipo quinolin-4(1H)-ona e quinolina estão presentes em diversas moléculas biologicamente ativas, desde alcalóides naturais a fármacos sintéticos disponíveis comercialmente, sendo que, as quinolin-4(1H)-onas destacam-se essencialmente pela sua atividade antibiótica de largo espectro. Este tipo de compostos têm sido alvo de intensa pesquisa na procura de novas moléculas com potencial aplicação na indústria farmacêutica. Nesta dissertação estabeleceram-se novos métodos de síntese de quinolin-4(1H)- onas e quinolinas e estudou-se a sua reatividade em algumas transformações químicas. No primeiro capítulo apresenta-se uma breve revisão bibliográfica sobre a ocorrência natural, atividade biológica e métodos de síntese de (E)-2- estirilquinolin-4(1H)-onas e acridin-9(10H)-onas. Seguidamente, descreve-se a síntese de novas (E)-2-estirilquinolin-4(1H)-onas a partir da ciclização de (E)- N-(2-acetilfenil)-3-arilacrilamidas, que são obtidas através da reação da 2’- aminoacetofenona com derivados do ácido cinâmico. Neste capítulo estão também descritas as transformações das (E)-2-estirilquinolin-4(1H)-onas em acridin-9(10H)-onas através de reações de Diels-Alder com a Nmetilmaleimida. No entanto, antes de se proceder ao estudo da reação de Diels-Alder foi necessário efetuar a proteção do grupo amina da 4-quinolona para evitar reações secundárias na reação de cicloadição. O estudo da proteção direta do grupo amina das (E)-2-estirilquinolin-4(1H)-onas conduziu à sintese de derivados da 2-estiril-4-metoxiquinolina como produtos secundários. A falta de regiosseletividade na reação de proteção levou a uma alteração da estratégia e as (E)-2-estiril-1-metilquinolin-4(1H)-onas foram sintetizadas a partir da reação de metilação das (E)-N-(2-acetilfenil)-3-arilacrilamidas seguida de ciclização in situ. As reações foram efetuadas também sob irradiação com micro-ondas e verificou-se que a principal vantagem desta tecnologia está relacionada com a diminuição drástica do tempo de reação. O segundo capítulo centra-se no estudo de reações catalisadas por paládio. Apresenta-se uma breve revisão bibliográfica sobre a ocorrência, propriedades biológicas e métodos de síntese de (E)-3-estirilquinolin-4(1H)-onas e furo[3,2- c]quinolinas. Seguidamente, descreve-se a síntese da 3-iodoquinolin-4(1H)- ona a partir da reação da 2’-aminoacetofenona com o formato de metilo, seguida de iodação na posição 3. A 3-iodoquinolin-4(1H)-ona será usada como precursor de novas (E)-3-estirilquinolin-4(1H)-onas através de reações de Heck com derivados do estireno. Verificou-se, no entanto, que a reação conduzia a baixos rendimentos e a estratégia utilizada para contornar esta situação foi a proteção do grupo amina da quinolona de partida, levando assim à sintese de novas (E)-3-estiril-1-metilquinolin-4(1H)-onas em bons resultados. Em alguns casos, as reações de Heck deram origem a derivados do produto secundário ramificado, verificando-se que a reação procede por duas vias mecanísticas. Este estudo foi também efetuado sob irradiação com microondas, no entanto, verificou-se que neste caso esta tecnologia conduz a uma diminuição do tempo, mas também a uma diminuição dos rendimentos. Estudou-se também a reatividade da 3-iodoquinolin-4(1H)-ona com derivados de arilacetileno em reações de Sonogashira, tendo-se estabelecido novas rotas de síntese de 2-arilfuro[3,2-c]quinolinas e, em alguns casos, de 2-aril-3- (feniletinil)furo[3,2-c]quinolinas como produtos secundários. A 3-iodo-1- metilquinolin-4(1H)-ona foi também usada como reagente de partida em reações de Sonogashira com o fenilacetileno levando à formação de novas 2- fenil-5-metilfuro[3,2-c]quinolin-4(5H)-onas. No terceiro capítulo apresenta-se uma breve revisão bibliográfica sobre a ocorrência natural, atividade biológica e métodos de síntese de pirrolo[3,2- c]quinolinas e descreve-se a síntese de novos derivados destes compostos usando a 4-cloro-3-iodoquinolina como sintão. Assim, fez-se reagir a 4-cloro-3- iodoquinolina, preparada a partir da 3-iodoquinolin-4(1H)-ona, em reações de Sonogashira, levando ao estabelecimento de novas rotas de síntese de 3- (ariletinil)-4-cloroquinolinas. Seguidamente estudou-se a reatividade das 3- (ariletinil)-4-cloroquinolinas em reações de substituição nucleofílica com várias aminas, levando à formação das intermediárias aminoquinolinas que após ciclização conduzem à síntese das novas pirrolo[3,2-c]quinolinas. Em alguns casos estes compostos foram também sintetizados num só passo usando como precursor as 3-(ariletinil)-4-cloroquinolinas, embora em piores rendimentos. Neste capítulo é também testada a reatividade da 3-(ariletinil)-4- cloroquinolina e da 4-cloro-3-iodoquinolina com a azida de sódio, tendo-se obtido as 4-aminoquinolinas correspondentes. Todos os novos compostos sintetizados foram caracterizados estruturalmente recorrendo a estudos de espectroscopia de ressonância magnética nuclear (RMN), incluindo espectros de 1H e 13C e estudos bidimensionais de correlação espectroscópica homonuclear e heteronuclear e de efeito nuclear de Overhauser (NOESY). Foram também efectuados, sempre que possível, espectros de massa (EM) e análises elementares ou espectros de massa de alta resolução (EMAR) para todos os novos compostos sintetizados.

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Neste trabalho é descrita a síntese de novos derivados porfirínicos com potencial aplicação em terapia fotodinâmica (PDT) e como quimiossensores para o reconhecimento molecular de catiões metálicos. Os novos compostos foram preparados usando como “template” 2-formil-5,10,15,20-tetrafenilporfirina através de diferentes abordagens sintéticas, tais como, reações de cicloadição 1,3-dipolar ou reações do tipo condensação aldólica. Depois de uma breve introdução sobre porfirinas segue-se no capítulo 2 a descrição dos estudos de formilação de Vilsmeier-Haack dos complexos de Ni(II) e Cu(II) de meso-tetra-arilporfirinas realizados usando irradiação de microondas. Utilizando os complexos de Ni(II) e Cu(II) da 5,10,15,20-tetrafenilporfirina foram considerados vários solventes, potências de irradiação e tempos de reação; as melhores condições encontradas foram aplicadas a outras mesotetra- arilporfirinas. Os derivados formilados resultantes da reação de formilação de Vilsmeier-Haack com irradiação de micro-ondas foram isolados em bons rendimentos e com significativa redução no tempo de reação, que passou de horas, em condiçoes clássicas de aquecimento, para minutos sob irradiação de micro-ondas. O “scale-up” da reação, nas condições estabelecidas, mostrou ser eficiente não sendo a reação afetada pelo aumento da quantidade de porfirina. O capítulo 3 descreve a reação de ciclo-adição 1,3-dipolar de meso-tetraarilporfirinas com iminas de nitrilo, geradas in situ por desidrobromação de hidrazono-α-bromoglioxilatos de etilo na presença de base. A reação de iminas de nitrilo com 5,10,15,20-tetraquis(pentafluorofenil)porfirina, na presença de K2CO3 em tolueno a refluxo, permitiu isolar novas pirazoloclorinas em rendimentos moderados. Foram investigadas as propriedades fotofísicas das novas clorinas e os resultados sugerem que duas delas apresentam potencialidades para serem utilizadas em PDT. Este tipo de reações foi estendida ao complexo 2-vinil-5,10,15,20- tetrafenilporfirinatozinco(II); este complexo reagiu com as iminas de nitrilo obtendo-se os correspondentes derivados porfirina-pirazolina em rendimentos que variaram entre valores de bom e de excelente. A regioquímica dos derivados porfirina-pirazolina formados foi elucidada por RMN e confirmada por difração de raios-X. O tratamento dos derivados porfirina-pirazolina com DDQ proporciona os correspondentes derivados porfirina-pirazol com rendimentos de moderados a excelentes. Quando os derivados porfirina-pirazolina foram submetidos a condições de hidrólise básica, observou-se não só a hidrólise do grupo éster presente no anel pirazolínico mas também a concomitante oxidação desta unidade heterocíclica, isolando-se assim, num único passo reacional, novos derivados de tipo porfirinapirazol com um grupo carboxílico. A descomplexação dos complexos de Zn(II) foi realizada na presença de TFA, tendo-se isolado quantitativamente os respetivos derivados na forma de bases livres.Foram estudadas algumas das propriedades fotofísicas de todos os compostos obtidos, quer na forma de complexos de Zn(II), quer na forma de base livre. Duma forma geral, todos os compostos preparados mostraram ser bons geradores de oxigénio singleto, o que os torna interessantes para possível utilização como fotossensibilizadores em PDT. No capítulo 4 é descrita a reação de 2-formil-5,10,15,20-tetrafenilporfirina com aril-cetonas e acetato de amónio, na presença de La(OTf)3, o que permitiu isolar novas benzoporfirinas e 2-(2,6-diarilpiridina-4-il)porfirinas. Esta metodologia foi utilizada para preparar, pela primeira vez, uma 2-(2,2':6,2''- terpiridin-4-il)porfirina. As estruturas de duas das 2-(2,6-diarilpiridin-4- il)porfirinas foram confirmadas por difração de raios-X de cristal único. A metodologia descrita permite ainda preparar novos derivados de tipo porfirinacalcona, apenas com pequenos ajustes nas condições reacionais através de uma reação do tipo condensação aldólica. Os derivados do tipo porfirinacalcona foram posteriormente usados para preparar derivados do tipo porfirinapirazol 1,3,5-tri-substituídos em bons rendimentos, através de reação de condensação com fenil-hidrazina. Em cada um dos capítulos é descrito os procedimentos experimentais e a caracterização espectroscópica (RMN, UV-vis e massa) dos novos compostos isolados. Em alguns casos foi necessário o recurso a técnicas de RMN bidimensionais como COSY, NOESY, HSQC e HMBC. Os compostos preparados neste trabalho foram ainda objecto de estudos de avaliação das respetivas potencialidades para actuarem como quimiossensores para o reconhecimento de catiões metálicos, nomeadamente, Cu(II), Ag(I), Zn(II), Cd(II) e Hg(II). Assim no capítulo 5 é descrita a caracterização fotofísica dos compostos preparados no capítulo 4 e, os estudos destes como potenciais quimiossensores. Os estudos para verificar a potencialidade dos compostos como quimiossensores foram efectuados: i) em solução, através de titulações espectrofotométricas e espectrofluorimétricas, ii) no estado sólido, recorrendo à preparação de filmes de PMMA dopados com os ligandos porfirínicos em estudo e, iii) na fase gasosa, seguindo as titulações dos ligandos com metais por espectrometria de massa (MALDI-TOF-MS). Os compostos estudados mostraram ter capacidade para atuarem como quimiossensores de catiões metálicos capazes de distinguirem entre os iões Zn(II) e Hg(II).