首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Unusual Stabilization of Zinc Peroxide by Manganese Oxide: Mechanistic Understanding by Temperature-Dependent EPR Studies
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Unusual Stabilization of Zinc Peroxide by Manganese Oxide: Mechanistic Understanding by Temperature-Dependent EPR Studies

机译:氧化锰的过氧化锌锌的不寻常稳定:通过温度依赖性EPR研究的机械理解

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摘要

Nanocrystalline zinc peroxide is passivated against further oxidation by the addition of minute, substoichiometric amounts of potassium permanganate, which also endows it with increased thermal stability. The oxidation state of manganese and the passivation mechanism are deciphered by a comparative electron paramagnetic resonance (EPR) study of the manganese-doped zinc peroxide nanoparticles and manganese oxide formed by reduction of permanganate by hydrogen peroxide as well as unmodified ZnO2 nanoparticles. Temperature-dependent in situ EPR studies at elevated temperatures allowed us to trace simultaneously the temperature-dependent changes in abundance of superoxide radicals and the formation of Mn(IV) species and also to identify Mn(III) species at cryotemperatures. We conclude that the passivation is caused by Mn(III) complexes that act as antioxidants removing superoxide radicals, which are abundant in zinc peroxide and even more so in the manganese-doped zinc peroxide.
机译:通过加入微小的含量达到氧化碳氧化锌,纳米晶体锌钝化型高锰酸钾,其还赋予其热稳定性增加。 锰和钝化机理的氧化态由对比较电子顺磁共振(EPR)的过氧化锌纳米颗粒和通过过氧化氢的锰酸盐和未改性的ZnO2纳米颗粒而形成的锰氧化物的研究。 温度依赖于升高温度的EPR研究,使我们同时追踪过量的超氧化物自由基的温度依赖性变化以及Mn(IV)物种的形成,以及在低温培养物上鉴定Mn(III)物种。 我们得出结论,钝化是由Mn(III)复合物引起的,其作为除去超氧化物的抗氧化剂,其在过氧化锌中丰富,甚至在锰掺杂的过氧化锌中。

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