用AgPO修饰的秸秆衍生活性炭通过循环降解机制去除有机污染物:吸附与光催化

Straw-Derived Activated Carbon Decorated with AgPO for Organic Pollutant Removal by a Circular Degradation Mechanism: Adsorption and Photocatalysis.

作者信息

Yue Yihang, Han Lin, Ding Bo, Yang Yanxi, Yue Xiaoju, Wang Shifeng, Song Qingguo, Du Chun

机构信息

Key Laboratory of Plateau Oxygen and Living Environment of Tibet Autonomous Region, College of Science, Tibet University, Lhasa 850000, P. R. China.

College of Information Engineering, Xizang Minzu University, Xianyang 712000, China.

出版信息

ACS Omega. 2024 May 21;9(22):23584-23596. doi: 10.1021/acsomega.4c01011. eCollection 2024 Jun 4.

Abstract

The escalating problem of water pollution has become an urgent concern, as it significantly undermines people's quality of life and overall public health. The increasing severity of water pollution represents a global challenge, with profound implications for human society. In this study, hydrothermal carbonization coupled with alkaline activation was utilized to repurpose barley straw into activated carbon (AC) as an absorbent. Silver phosphate (AgPO) was synthesized as a potent photocatalyst. Subsequent ultrasound-assisted loading integrated the robust adsorptive capabilities of the AC with the advanced photocatalytic efficiency of silver phosphate, resulting in a superior composite material (AC/AgPO) and implementing a novel "absorption-photocatalysis" active circular degradation strategy to remove hazardous organics in water. Comprehensive characterization assays confirmed the successful synthesis and incorporation of AgPO onto the AC scaffold. The composite with a AgPO concentration of 3 wt % exhibited a high methylene blue (MB) removal efficiency of 99.4% within 100 min. The reaction rate of this composite surpassed that of standalone AC by a factor of 2.89. Furthermore, cyclic regeneration studies via adsorption-desorption methodologies revealed the composite's resilience and sustained performance. The MB removal efficiency was maintained at 85.5% over five consecutive cycles, demonstrating the composite's remarkable stability. The integration of adsorptive and photocatalytic functionalities within a single system mitigates potential secondary pollution arising during the AC's desorption phase and enhances the organic contaminant removal efficiency. Moreover, the utilization of this integrated material reduces the quantity of chemicals and energy required for conventional adsorption water treatment techniques, as the material harnesses sunlight or alternative light sources to catalyze contaminant decomposition. This reduces the dependence on chemical treatment agents, contributing to resource conservation and alleviating environmental burdens. This pioneering approach offers a novel paradigm for addressing pollutant challenges in aqueous environments.

摘要

水污染问题日益严重,已成为亟待关注的问题,因为它严重损害了人们的生活质量和公众健康。水污染日益严重是一项全球性挑战,对人类社会有着深远影响。在本研究中,采用水热碳化结合碱性活化的方法,将大麦秸秆转化为活性炭(AC)作为吸附剂。合成了磷酸银(AgPO)作为一种高效光催化剂。随后的超声辅助负载将AC强大的吸附能力与磷酸银的先进光催化效率相结合,形成了一种优质的复合材料(AC/AgPO),并实施了一种新型的“吸附 - 光催化”活性循环降解策略,以去除水中的有害有机物。综合表征分析证实了AgPO成功合成并负载到AC支架上。AgPO浓度为3 wt%的复合材料在100分钟内对亚甲基蓝(MB)的去除效率高达99.4%。该复合材料的反应速率比单独的AC高出2.89倍。此外,通过吸附 - 解吸方法进行的循环再生研究表明了该复合材料的弹性和持续性能。在连续五个循环中,MB去除效率保持在85.5%,证明了该复合材料具有出色的稳定性。单一系统中吸附和光催化功能的整合减轻了AC解吸阶段可能产生的潜在二次污染,并提高了有机污染物的去除效率。此外,这种集成材料的使用减少了传统吸附水处理技术所需的化学物质和能量,因为该材料利用阳光或替代光源催化污染物分解。这减少了对化学处理剂的依赖,有助于资源节约并减轻环境负担。这种开创性方法为解决水环境中的污染物挑战提供了一种新的范例。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/203c/11154945/b7cadc170047/ao4c01011_0001.jpg

相似文献

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索