El-Gawad Heba A, Hussein Mostafa H, Zahran Hamdy A, Kadry Ghada
Department of Engineering Mathematics and Physics, Higher Institute of Engineering, El-Shorouk Academy, Cairo, Egypt.
Chemical Engineering Department, Higher Institute of Engineering, El- Shorouk Academy, Cairo, Egypt.
Sci Rep. 2025 Jun 20;15(1):20128. doi: 10.1038/s41598-025-04615-y.
This research explores the development of an innovative activated carbon adsorbent (ACES) derived from waste eggshells through sulfuric acid activation to effectively remove phenol from simulated wastewater. Optimization of adsorption parameters was conducted using Design-Expert 13 software and response surface methodology (RSM). Under optimal conditions (initial phenol concentration of 25.015 mg/L, adsorbent dosage of 4.913 g/L, pH of 4.693, and temperature of 25.013 °C), ACES achieved an outstanding phenol removal efficiency of 99.87%. Characterization studies revealed a high BET surface area of 1034.775 m²/g and enhanced porosity, significantly contributing to adsorption performance. Mechanistic insights showed that electrostatic attraction, π-π interactions, and hydrogen bonding drove adsorption. The Langmuir model provided the best fit for phenol adsorption on ACES (R² = 0.9845), indicating monolayer adsorption on uniform sites. Kinetic analysis revealed that the adsorption followed pseudo-second-order kinetics, with a rate constant (k) of 0.0078 g·min⁻¹·mg⁻¹ and a high correlation coefficient (R² = 0.9886), pointing to chemisorption rather than physical adsorption. Thermodynamic analysis further confirmed that the process is spontaneous and exothermic, accompanied by increased randomness at the adsorbent-adsorbate interface. ACES exhibited good reusability, retaining 80% efficiency after four regeneration cycles. The findings of this research highlight a sustainable approach to utilizing waste eggshells for phenol removal, offering potential applications in wastewater treatment.
本研究探索了一种创新的活性炭吸附剂(ACES)的开发,该吸附剂由废蛋壳经硫酸活化制得,用于有效去除模拟废水中的苯酚。使用Design-Expert 13软件和响应面方法(RSM)对吸附参数进行了优化。在最佳条件下(初始苯酚浓度为25.015 mg/L、吸附剂用量为4.913 g/L、pH值为4.693、温度为25.013℃),ACES实现了99.87%的出色苯酚去除效率。表征研究表明其具有1034.775 m²/g的高BET表面积和增强的孔隙率,这对吸附性能有显著贡献。机理分析表明,静电吸引、π-π相互作用和氢键驱动了吸附过程。Langmuir模型最适合描述苯酚在ACES上的吸附(R² = 0.9845),表明在均匀位点上的单层吸附。动力学分析表明,吸附遵循准二级动力学,速率常数(k)为0.0078 g·min⁻¹·mg⁻¹,相关系数较高(R² = 0.9886),表明是化学吸附而非物理吸附。热力学分析进一步证实该过程是自发的且放热的,同时吸附剂-吸附质界面处的随机性增加。ACES表现出良好的可重复使用性,在四个再生循环后仍保持80%的效率。本研究结果突出了利用废蛋壳去除苯酚的可持续方法,为废水处理提供了潜在应用。