Ministry of Education Key Laboratory of Ecology and Resource Use of the Mongolian Plateau & Inner Mongolia Key Laboratory of Environmental Pollution Control and Waste Resource Recycle, School of Ecology and Environment, Inner Mongolia University, Hohhot, 010021, China; State Key Laboratory of Environmental Criteria and Risk Assessment, Chinese Research Academy of Environmental Sciences, Beijing, 100012, China.
Inner Mongolia Key Laboratory of Chemistry and Physics of Rare Earth Materials, School of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot, 010021, China; Emission Trading Management Center of Inner Mongolia, Hohhot, 010011, China.
J Hazard Mater. 2020 May 15;390:122127. doi: 10.1016/j.jhazmat.2020.122127. Epub 2020 Jan 20.
An ultrasonic-assistant fore-modified method was designed to develop the self-functionalized biochar (SFB) with enhanced adsorbability. Characterized by different morphologies, SFB was presenting particular groups of carbon micro-spheres. Possessing ultrahigh surface area of 2368 m/g, SFB exhibited excellent adsorption capacity (up to 497 mg/g) towards traditional antibiotic. Besides, more functional groups, which played important roles on the solid-liquid interface interaction, posed on the surface of SFB. The removal efficiency of levofloxacin was up to 99.93 % in the competitive system. Adsorption mechanism was analyzed based on the results of FTIR, kinetics, isotherms and competitive adsorption experiments. The chemisorption affinity on the solid-liquid interface was strong enough, which was proved by isotherms, thermodynamics and K analyses. Meanwhile, SFB has presented a good resistance against humid acid interference in aqueous environment. Thus, the ultrasonic-assistant fore-modified method was potential in dramatically improving the feature of biochars. SFB presented excellent adsorbability to antibiotics and exhibits extraordinary potential in wastewater treatment.
设计了一种超声辅助预改性方法来开发具有增强吸附能力的自功能化生物炭 (SFB)。SFB 具有不同的形态,呈现出特殊的碳微球群体。SFB 具有超高的比表面积 2368 m/g,对传统抗生素表现出优异的吸附能力(高达 497 mg/g)。此外,更多的官能团在固液界面相互作用中发挥了重要作用,存在于 SFB 的表面。在竞争体系中,左氧氟沙星的去除效率高达 99.93%。通过傅里叶变换红外光谱(FTIR)、动力学、等温线和竞争吸附实验分析了吸附机理。等温线、热力学和 K 分析证明了固液界面上的化学吸附亲和力很强。同时,SFB 在水相环境中表现出对潮湿酸性干扰的良好抵抗力。因此,超声辅助预改性方法有可能显著改善生物炭的特性。SFB 对抗生素表现出优异的吸附能力,在废水处理方面具有非凡的潜力。