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Reduction of crystalline iron(III) oxyhydroxides using hydroquinone: Influence of phase and particle size

机译:使用氢醌还原结晶性羟基氧化铁(III):相和粒径的影响

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摘要

Iron oxides and oxyhydroxides are common and important materials in the environment, and they strongly impact the biogeochemical cycle of iron and other species at the Earth’s surface. These materials commonly occur as nanoparticles in the 3-10 nm size range. This paper presents quantitative results demonstrating that iron oxide reactivity is particle size dependent. The rate and extent of the reductive dissolution of iron oxyhydroxide nanoparticles by hydroquinone in batch experiments were measured as a function of particle identity, particle loading, and hydroquinone concentration. Rates were normalized to surface areas determined by both transmission electron microscopy and Braunauer-Emmett-Teller surface. Results show that surface-area-normalized rates of reductive dissolution are fastest (by as much as 100 times) in experiments using six-line ferrihydrite versus goethite. Furthermore, the surface-area-normalized rates for 4 nm ferrihydrite nanoparticles are up to 20 times faster than the rates for 6 nm ferrihydrite nanoparticles, and the surface-area-normalized rates for 5 X 64 nm goethite nanoparticles are up to two times faster than the rates for 22 X 367 nm goethite nanoparticles.
机译:氧化铁和羟基氧化铁是环境中常见的重要材料,它们强烈影响铁和其他物种在地球表面的生物地球化学循环。这些材料通常以3-10 nm大小的纳米颗粒形式出现。本文提出了定量结果,证明了氧化铁反应性是取决于粒度的。在批处理实验中,测量了氢醌对羟基氧化铁纳米颗粒的还原溶解速率和程度,该过程与颗粒身份,颗粒负载和对苯二酚浓度有关。将速率归一化为通过透射电子显微镜和Braunauer-Emmett-Teller表面确定的表面积。结果表明,在使用六线水铁矿和针铁矿的实验中,表面积标准化的还原溶出速度最快(多达100倍)。此外,4纳米水铁矿纳米粒子的表面积归一化速率比6纳米铁水沸石纳米粒子的表面积归一化速率快20倍,而5 X 64 nm针铁矿纳米粒子的表面积归一化速率加快两倍。比22 X 367 nm针铁矿纳米粒子的速率高。

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