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合成增强耐腐蚀性的 Fe-B-C-Ti 非晶态 ribbons 及其在光照下光降解效率的评估。

Synthesis of enhanced corrosion resistant Fe-B-C-Ti amorphous ribbons and evaluation of their photodegradation efficiency under light irradiation.

机构信息

Department of Materials Science and Metallurgical Engineering, Kyungpook National University, Daegu, 41566, South Korea.

Department of Environmental Engineering, Kyungpook National University, Daegu, 41566, South Korea.

出版信息

Chemosphere. 2022 Jan;287(Pt 2):132175. doi: 10.1016/j.chemosphere.2021.132175. Epub 2021 Sep 8.

Abstract

Fe-based amorphous alloys have been found to be very efficient in the degradation of water pollutants due to their unique atomic arrangements with long-range disordered structure. In this work, Fe-B-C-Ti amorphous ribbons were successfully synthesized and showed high catalytic efficiency in the degradation of methylene blue (MB) under simulated sunlight and across a wide pH range. The catalytic efficiency was evaluated under different conditions to optimize the degradation performance. The amorphous ribbon FeBCTi was found to exhibit the highest photocatalytic activity as explained by its optical and photoelectrochemical properties. It can degrade MB completely with low Fe-leaching and significant recyclability at pH close to a neutral range (pH 5). The degradation mechanisms can be explained in terms of photocatalytic activity along with the galvanic cell effect which contributed to the efficient MB degradation. This work provides a comprehensive idea for the synthesis of amorphous alloys by optimizing their elemental composition and also explains the catalytic activity of partially crystallized regions on the ribbon surface. The significant corrosion resistance and the quick degradation of MB in a wide pH range in a recyclable manner by these easily separable and highly efficient catalysts indicate great potential for their practical application.

摘要

铁基非晶合金由于其具有长程无序结构的独特原子排列,被发现对水污染物的降解非常有效。在这项工作中,成功合成了 Fe-B-C-Ti 非晶 ribbons,并在模拟太阳光下和宽 pH 范围内对亚甲基蓝(MB)的降解表现出很高的催化效率。通过评估不同条件下的催化效率,对降解性能进行了优化。非晶 ribbon FeBCTi 表现出最高的光催化活性,这可以通过其光学和光电化学性质来解释。它可以在接近中性范围(pH 5)的低铁浸出率和显著的可回收性下完全降解 MB。降解机制可以根据光催化活性以及对 MB 高效降解有贡献的原电池效应来解释。这项工作为通过优化元素组成来合成非晶合金提供了一个全面的思路,同时也解释了表面部分结晶区域的催化活性。这些容易分离且高效的催化剂在宽 pH 范围内具有显著的耐腐蚀性和快速降解 MB 的能力,且可回收,这表明它们在实际应用中具有很大的潜力。

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