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Development of a Green Technology for Mercury Recycling from Spent Compact Fluorescent Lamps Using Iron Oxides Nanoparticles and Electrochemistry

机译:使用氧化铁纳米粒子和电化学技术从废旧紧凑型荧光灯中回收汞的绿色技术的发展

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The widespread use of energy efficient mercury containing lamps and impending regulations on the control of mercury emissions has necessitated the development of green mercury control technologies such as nanosorbent capture and electrolysis regeneration. Herein we describe a two-step green technique to remove and recycle mercury from spent compact fluorescent lamps (CFLs). The first element included the assessment of capture efficiencies of mercury vapor on magnetite (Fe3O4) and maghemite (γ-Fe2O3), naturally abundant and ubiquitous components of atmospheric dust particles. Around 60 μg of mercury vapor can be removed up to 90% by 1.0 g of magnetite nanoparticles, within a time scale of minutes. The second step included the development of an electrochemical system for the mercury recycling and regeneration of used nanoparticles. Under optimized conditions, up to 85% of mercury was recovered as elemental mercury. Postelectrolysis regenerated iron oxide nanoparticles were used in several sorption-electrolysis cycles without loss of the adsorption capacity, morphology, and surface area. The low energy usage for electrolysis can be supplied by the solar panels. The implications of our results within the context of green technology are herein discussed.
机译:高效节能的含汞灯的广泛使用以及有关汞排放控制的迫在眉睫的法规,已要求开发绿色汞控制技术,例如纳米吸附剂捕获和电解再生。在这里,我们描述了一种两步绿色技术,用于从废弃的紧凑型荧光灯(CFL)中去除和回收汞。第一个要素包括评估汞气对磁铁矿(Fe3O4)和磁赤铁矿(γ-Fe2O3)(大气尘埃颗粒的自然丰富和普遍存在的成分)的捕集效率。在几分钟的时间范围内,通过1.0 g磁铁矿纳米颗粒,可以去除约60μg汞蒸气,最多可去除90%。第二步包括开发用于汞回收和废旧纳米粒子再生的电化学系统。在优化条件下,最多可回收85%的汞作为元素汞。电解后再生的氧化铁纳米颗粒用于几个吸附-电解循环中,而不会损失吸附容量,形态和表面积。太阳能板可提供电解所需的低能耗。本文讨论了我们的结果在绿色技术背景下的含义。

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