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新型铁掺杂 OMS-2 负载活性炭材料在高湿度环境中高效分解臭氧。

Efficient ozone decomposition in high humidity environments using novel iron-doped OMS-2-loaded activated carbon material.

机构信息

School of Resources and Environmental Engineering, Jiangsu University of Technology, Changzhou, Jiangsu, 213001, People's Republic of China.

Jiangsu Environmental Engineering Technology Co., Ltd., Nanjing, Jiangsu, 213001, People's Republic of China.

出版信息

Environ Sci Pollut Res Int. 2024 May;31(24):35678-35687. doi: 10.1007/s11356-024-33623-0. Epub 2024 May 13.

Abstract

This study effectively addresses the rapid deactivation of manganese-based catalysts in humid environments during ozone decomposition by introducing iron-doped manganese oxide octahedral molecular sieve (Fe-OMS-2) catalysts supported on activated carbon (AC). By optimizing the doping ratio of Fe-OMS-2, the Fe-OMS-2/AC catalyst achieves nearly 100% ozone decomposition efficiency across a wide range of relative humidity levels (0 to 60%), even at elevated air flow rates of 800 L·g·h, outperforming standalone AC, Fe-OMS-2, or a simple mixture of OMS-2 and AC. The Fe-OMS-2/AC catalyst features a porous surface and a mesoporous structure, providing a substantial specific surface area that facilitates the uniform distribution of the Fe-OMS-2 active phase on the AC surface. The incorporation of Fe ions enhances electron transfer between valence state transitions of Mn, thereby improving the catalyst's efficiency in ozone decomposition. Additionally, the AC component protects catalytic sites and enhances the catalyst's humidity resistance. In conclusion, this research presents a novel strategy for developing highly efficient and cost-effective ozone decomposition catalysts that enhance dehumidification, significantly contributing to industrial ozone treatment technologies and advancing environmental protection.

摘要

本研究通过引入负载在活性炭(AC)上的掺铁氧化锰八面体分子筛(Fe-OMS-2)催化剂,有效地解决了在潮湿环境中臭氧分解过程中锰基催化剂快速失活的问题。通过优化 Fe-OMS-2 的掺杂比例,Fe-OMS-2/AC 催化剂在很宽的相对湿度范围内(0 到 60%)实现了近 100%的臭氧分解效率,即使在 800 L·g·h 的高空气流速下,也优于单独的 AC、Fe-OMS-2 或 OMS-2 和 AC 的简单混合物。Fe-OMS-2/AC 催化剂具有多孔表面和中孔结构,提供了大量的比表面积,有利于 Fe-OMS-2 活性相在 AC 表面的均匀分布。Fe 离子的掺入增强了 Mn 价态跃迁之间的电子转移,从而提高了催化剂的臭氧分解效率。此外,AC 组分保护催化位点并增强了催化剂的耐湿性。总之,本研究提出了一种开发高效、经济的臭氧分解催化剂的新策略,该催化剂增强了除湿能力,为工业臭氧处理技术做出了重大贡献,推进了环境保护。

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