活性炭
吸附
有机质
壳体(结构)
草甘膦
制浆造纸工业
化学
环境化学
碳纤维
环境科学
植物
生物
有机化学
农学
材料科学
复合材料
工程类
复合数
作者
Sufia Hena,Krishnat Shankar Patil,Nadia Leinecker,Tejas Bhatelia,Milinkumar T. Shah
标识
DOI:10.1016/j.ceja.2025.100754
摘要
• A renewable and cost-effective coconut shell-activated carbon was used and reused for glyphosate removal. • Glyphosate was removed due to chemical and physical interaction between coconut shell-activated carbon and glyphosate. • Polysaccharides in AOM affect the glyphosate adsorption capacity of coconut shell-activated carbon less significantly than protein and lipids. • Algal organic matter produced from lag to the early stationary phase contained a higher fraction of polysaccharides. • Algal organic matter produced from the late stationary phase and cell lysis contained a higher fraction of protein and lipids. coconut shell-activated carbon. Glyphosate contamination in water bodies poses a serious risk to human health and the environment; hence, its removal from water is a prospect of the highest priority. Adsorption using activated carbon has been extensively studied for glyphosate removal from water. However, surface water contains natural organic matter which can deteriorate activated carbon's adsorption capacity and selectivity for glyphosate. The current study investigates the effect of algal organic matter (AOM) on the adsorption of glyphosate on coconut shell-activated carbon (CSAC). At a set of experimental conditions using water with only glyphosate contamination, the equilibrium adsorption capacity was found to be 30.79 mg/g at an optimum pH of 3; and the equilibrium data could be represented by the Langmuir isotherm with a maximum uptake capacity of 48.3 mg/g. When experiments were repeated using water simultaneously contaminated with glyphosate and AOM (2 mg/L) at the same conditions, the adsorption capacity drastically decreased to 13.93 mg/g. It was observed that the type of AOM, whether it had higher polysaccharides (from the early growth phase of Chlorella vulgaris ) or protein (from 40-day old culture), had a significant impact on glyphosate adsorption. The data suggest that CSAS selectivity for glyphosate is highly sensitive to pH. The regeneration experiments revealed 93 % glyphosate recovery when pH was further reduced to 1.5. Overall, the current study quantifies the decrease in CSAC's selectivity for glyphosate due to the presence of AOM and provides optimum pH for maximum selectivity and regeneration.
科研通智能强力驱动
Strongly Powered by AbleSci AI