Mohamed Hala, Mahmoud Rehab, Abdelwahab Abdalla, Farghali Ahmed A, Abo El-Ela Fatma I, Allah Abeer Enaiet
Department of Materials Science and Nanotechnology, Faculty of Postgraduate Studies for Advanced Sciences, Beni-Suef University Beni-Suef 62511 Egypt.
Chemistry Department, Faculty of Science, Beni-Suef University 62511 Egypt
RSC Adv. 2023 Sep 1;13(37):26069-26088. doi: 10.1039/d3ra03426g. eCollection 2023 Aug 29.
In order to achieve sustainable benefits for the adsorption of wastewater pollutants, spent adsorbents need to be recycled and/or valorized. This work studied a two-dimensional (2D) ZnMgFe layered double hydroxide (LDH) for ceftriaxone sodium (CTX) adsorption. This LDH showed a crystallite size of 9.8 nm, a BET surface area of 367.59 m g, and a micro-sphere-like morphology. The factors investigated in this study were the adsorbent dose, initial concentration, initial pH, and contact time. ZnMgFe LDH showed 99% removal of CTX with a maximum adsorption capacity of 241.75 mg g at pH = 5. The Dubinin-Radushkevich model was found to be the most adequate isotherm model. The spent adsorbent (ZnMgFe LDH/CTX) was reused as an electro-oxidation catalyst for direct methanol fuel cells. ZnMgFe LDH/CTX showed almost a 10-fold increase in electrochemical activity for all scan rates compared to bare ZnMgFe LDH in 1 M KOH. As methanol concentration increases, the maximum current density generated by both the ZnMgFe LDH and ZnMgFe LDH/CTX samples increases. Moreover, the maximum current density for ZnMgFe LDH/CTX was 47 mA cm at a methanol concentration of 3 M. Both samples possess reasonable stability over a 3600 S time window with no significant deterioration of electrochemical performance. Moreover, the antimicrobial studies showed that ZnMgFe LDH had a significant antifungal (especially , , and Penicillium species) and antibacterial (with greater action against Gram-positive than negative) impact on several severe infectious diseases, including . This study paves the way for the reuse and valorization of selected adsorbents toward circular economy requirements.
为了实现废水污染物吸附的可持续效益,废吸附剂需要进行回收和/或增值利用。本研究考察了二维(2D)ZnMgFe层状双氢氧化物(LDH)对头孢曲松钠(CTX)的吸附性能。该LDH的微晶尺寸为9.8 nm,BET表面积为367.59 m²/g,呈微球状形态。本研究考察的因素包括吸附剂用量、初始浓度、初始pH值和接触时间。ZnMgFe LDH在pH = 5时对CTX的去除率达99%,最大吸附容量为241.75 mg/g。结果表明,Dubinin-Radushkevich模型是最合适的等温线模型。废吸附剂(ZnMgFe LDH/CTX)被重新用作直接甲醇燃料电池的电氧化催化剂。与在1 M KOH中的裸ZnMgFe LDH相比,ZnMgFe LDH/CTX在所有扫描速率下的电化学活性几乎提高了10倍。随着甲醇浓度的增加,ZnMgFe LDH和ZnMgFe LDH/CTX样品产生的最大电流密度均增加。此外,在甲醇浓度为3 M时,ZnMgFe LDH/CTX的最大电流密度为47 mA/cm²。在3600 s的时间窗口内,两个样品都具有合理的稳定性,电化学性能没有明显下降。此外,抗菌研究表明,ZnMgFe LDH对几种严重传染病具有显著的抗真菌(尤其是曲霉属、青霉属和青霉菌种)和抗菌(对革兰氏阳性菌的作用大于阴性菌)作用,包括……。本研究为根据循环经济要求对选定吸附剂进行再利用和增值利用铺平了道路。