Liu Juan, Wei Xudong, Ren Shixing, Qi Jianying, Cao Jielong, Wang Jin, Wan Yuebing, Liu Yanyi, Zhao Min, Wang Liang, Xiao Tangfu
Key Laboratory of Water Quality and Conservation in the Pearl River Delta, Ministry of Education, Guangdong Provincial Key Laboratory of Radionuclides Pollution Control and Resources, School of Environmental Science and Engineering, 510006, Guangzhou, China.
Key Laboratory of Water Quality and Conservation in the Pearl River Delta, Ministry of Education, Guangdong Provincial Key Laboratory of Radionuclides Pollution Control and Resources, School of Environmental Science and Engineering, 510006, Guangzhou, China.
Environ Pollut. 2022 Jul 1;304:119196. doi: 10.1016/j.envpol.2022.119196. Epub 2022 Mar 24.
Both of thallium (Tl) and antimony (Sb) are toxic elements in the natural environment. Emerging Tl and Sb pollution in water has gradually gained public concerns globally. However, limited technologies are available for co-removal of Tl and Sb from wastewater. Herein, an novel system was successfully fabricated to enhance the synergetic removal of both Tl and Sb in wastewater. In this study, MnFeO-biochar composite (MFBC) facilely synthesized by a one-pot hydrothermal method was used as adsorbent and persulfate (PS) activator for simultaneously removing Tl and Sb from wastewater. The optimal reaction conditions for best removal efficiency of Tl and Sb simultaneously were obtained by using the response surface design combined with Box-Behnken Design (BBD) model. Results unveiled that the average removal rates of Tl and Sb can achieve 98.33% and 89.14%, respectively under the optimal reaction conditions. Electron Spin Resonance (ESR), and radical quenching experiments showed that OH and SO play a critical role in the removal of Tl-Sb compound pollution. Via using different characterization, it is revealed that the mechanism of removing Tl-Sb containing wastewater by MFBC-1.4/PS system is oxidation, adsorption, complexation and ion exchange. All these results indicate that MFBC-1.4/PS technology is prospective in highly effective removal of Tl and Sb from wastewater simultaneously.
铊(Tl)和锑(Sb)在自然环境中均为有毒元素。水体中新兴的铊和锑污染已逐渐引起全球公众的关注。然而,可用于从废水中协同去除铊和锑的技术有限。在此,成功构建了一种新型体系以增强废水中铊和锑的协同去除效果。在本研究中,通过一锅水热法简便合成的锰铁氧体 - 生物炭复合材料(MFBC)被用作吸附剂和过硫酸盐(PS)活化剂,用于同时从废水中去除铊和锑。采用响应面设计结合Box - Behnken设计(BBD)模型获得了同时实现铊和锑最佳去除效率的最佳反应条件。结果表明,在最佳反应条件下,铊和锑的平均去除率分别可达98.33%和89.14%。电子自旋共振(ESR)和自由基猝灭实验表明,·OH和SO在铊 - 锑复合污染的去除中起关键作用。通过不同表征发现,MFBC - 1.4/PS体系去除含铊 - 锑废水的机制为氧化、吸附、络合和离子交换。所有这些结果表明,MFBC - 1.4/PS技术在同时高效去除废水中的铊和锑方面具有前景。