6 resultados para Íon de manganês

em Scielo Saúde Pública - SP


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Este trabalho descreve a determinação do íon amônio em solos, pelo método colorimétrico baseado no reativo de Nessler. Foram estudados diversos aspectos, como o espectro de absorção do composto colorido e do reativo de Nessler, a influência do tempo de repouso e da temperatura sobre o desenvolvimento da côr e a interferência de alguns íons que normalmente se encontram nos extratos de solos. A determinação do íon amônio foi conduzida em extratos de solos obtidos com solução de KC1 1 N e destilados, para evitar a interferência do íon manganês-II, que forma um precipitado com o reativo de Nessler. Os resultados obtidos pelo método colorimétrico foram comparados com os determinados pelo método titrimétrico.

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A alta disponibilidade de íons metálicos no solo, dentre eles o Mn2+, pode inibir os fungos micorrízicos arbusculares (FMA), retardando a germinação dos esporos e, conseqüentemente, a formação de micorriza, o que reduz a eficiência simbiótica. O objetivo deste trabalho foi avaliar o efeito do íon Mn2+ sobre a germinação de esporos de seis espécies de FMA dos gêneros Glomus, Acaulospora, Gigaspora e Scutellospora em experimento in vitro Em substrato constituído por areia lavada, adicionaram-se 15; 30 e 75 mg kg-1 de Mn2+, na forma de MnCl2.4H2O, mantendo-se um controle sem adição de Mn. Acondicionaram-se os esporos em envelopes membranosos, introduzindo-os entre duas camadas de areia com diferentes níveis de Mn, em placas de Petri. Após 30 dias de incubação, avaliou-se a germinação dos esporos. Houve decréscimo médio de 32, 49 e 75 % na germinação dos esporos, à medida que se aumentaram as doses de Mn, em comparação ao controle. A germinação de esporos do gênero Glomus foi totalmente inibida na maior dose. O gênero Acaulospora sofreu decréscimos de até 50 % já na dose de 15 mg kg-1 de Mn2+, enquanto os gêneros Scutellospora e Gigaspora apresentaram os maiores índices de germinação de esporos, tendo havido tolerância no caso de Gigaspora, mesmo na maior dose de Mn2+, e estímulo à germinação no caso de Scutellospora até à dose 30 mg kg-1 de Mn2+.

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The e phase of electrolytic manganese dioxide (EMD) is the structural form most easily converted in the LiMn2O4 spinel used as cathode in lithium batteries. Thus, employing titanium as anode, a study of electrolysis parameters was carried out in order to determine the best conditions to produce an e-EMD suitable for that spinel preparation. The influence of solution temperature (65oC and 90oC) and current density (between 1 mA/cm2 and 17.5 mA/cm2) on the anode potential and the EMD properties was investigated using an aqueous 2.0 mol/L MnSO4 + 0.30 mol/L H2SO4 solution. In any of the electrolysis conditions tested only the e-EMD structure was obtained, but its specific surface area varied with the applied current density and temperature. Drying the e-EMD at temperatures between 60oC and 120oC did not cause any phase changes. To produce a suitable EMD at the highest current density possible without passivation of the titanium anode, the best electrolysis parameters were determined to be 90oC and 15 mA/cm2. The e-EMD thus obtained had a specific surface area (BET) of ca. 65 m2/g.

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In this work a micro-heater device to be used as an integral part of the flow analysis manifold is described. The usefulness of the device was demonstrated using it in the development of a multicommutated flow analysis procedure for the spectrophotometric determination of manganese in plant digest. The method was based on the manganese oxidation by periodate in phosphoric acid medium to form the permanganate anion. The reaction development is dependent on the temperature and it was observed that at 25 °C a time interval of ca. 15 min was necessary for the reaction to attain equilibrium. Setting the temperature to 70 ºC, this time interval could be decreased to ca. 30 s. This condition was easily attained employing the proposed micro-heater device coupled to the manifold. The procedure was applied to manganese determination in soybean digests and results compared with those obtained by inductively coupled argon plasma optical emission spectrometry (ICP-OES). No significant difference at 90% confidence level was observed. A linear response for sample concentrations ranging from 5.0 to 30.00 mg L-1 Mn2+; a relative standard deviation of 1.3% (n = 6) for a typical sample containing 6.3 mg L-1 Mn2+; a sampling rate of 22 determinations per hour; a low reagent consumption, of 12.0 mg NaIO4 per determination; and a detection limit of 1.2 mg L-1 were achieved.

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Considerable attention has been paid to chitosan and derivatives as efficient adsorbents of pollutants such as metal ions and dyes in aqueous medium. Nevertheless, no report can be found on the remedial actions of chitosan microspheres crosslinked with tripolyphosphate to control acidity, iron (III) and manganese (II) contents in wastewaters from coal mining. In this work, chitosan microspheres crosslinked with tripolyphosphate were used for the neutralization of acidity and removal of Fe (III) and Mn (II) from coal mining wastewaters. The study involved static and dinamic methods. The neutralization capacity of the surface of the static system was 395 mmol of H3O+ per kilogram of microspheres, higher than that of the dynamic one (223 mmol kg-1). The removal of Fe(III) in wastewater was of 100% and that of Mn(II) was 90%.

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New chemical systems have been recently designed for the study of complex phenomena such as oscillatory dynamics in the temporal domain and spatiotemporal pattern formation. Systems derived from oscillators based on the chemistry of bromate are the most extensively studied, with the celebrated Belousov-Zhabotinsky (BZ) reaction being the most popular example. Problems such as the formation of bubbles (CO2) and solid precipitate in the course of the reaction and the occurrence of simply short-lived oscillations under batch conditions are very common and, in some cases, compromise the use of some of these systems. It is investigated in this paper the dynamic behavior of the bromate/hypophosphite/acetone/dual catalyst system, which has been sugested as an interesting alternative to circumvent those inconvenients. In this work, manganese and ferroin are employed as catalysts and the complete system (BrO3-/H2PO2-/acetone/Mn(II)-ferroin) is studied under batch conditions. Temporal symmetry breaking was studied in a reactor under agitation by means of simultaneous records of the potential changes of platinum and Ag/AgBr electrodes, both measured versus a reversible hydrogen electrode. Additionally, spatio-temporal formation of target patterns and spiral waves were obtained when the oscillating mixture was placed in a quasi two-dimensional reactor.