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Facile synthesis of rare earth metal dual-doped Pr2O3 nanostructures: Enhanced electrochemical water-splitting and antimicrobial properties

机译:稀土金属双掺杂Pr2O3纳米结构的简易合成:增强电化学分解水和抗菌性能

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? 2022 Elsevier Ltd and Techna Group S.r.l.Dual metal doping is a state-of-the-art technique for improving the electrocatalytic characteristics for oxygen evolution reaction (OER) and enhancement of the antibacterial activity of the material. Series of rare earth dual metal-doped Pr2O3 electrocatalysts (Pr2CeMO3, M = Sm, Yb, Er) were successfully fabricated by employing sol-gel treatment. The antimicrobial and electrochemical applications of grown products were studied along with physical properties using advanced techniques such as FESEM, EDX, XRD, FTIR, IV, CV, LSV, EIS, and ECSA. The prepared products retain the monoclinic Pr2O3 structure with the successful doping of rare-earth elements. From the FESEM analysis, grown products have the grainy conglomerate shape, icy monoclinic boxes, irregular lamellar shaped, and well-crystallized grains with the plate-like morphology. EDX has confirmed the presence of metal elements Pr, Ce, Sm, Yb, and Er in grown samples. The electrochemical measurements exhibited the enhancement by dual-doping, and Pr2CeSmO3 has an extraordinarily low overpotential of 189 mV to reach 10 mAcm?2 density and lower Tafel slope (75 mV/dec) for oxygen evolution reaction (OER) in 1.0 M KOH electrolyte. Furthermore, the electrocatalytic efficiency of Pr2CeSmO3 electrocatalyst for OER is extremely long-lasting for (>16 h). The antibacterial test showed that all grown single and dual-doped nanostructures have good antibacterial performance, but Pr2CeSmO3 exhibits strong inhibition activity towards E. coli, K. pneumoniae, S. aureus, and P. vulgaris bacterial strains with maximum inhibition zone diameter 30, 32, 35, and 31 mm, respectively. This low-cost method for the production of rare earth dual metal-doped materials holds a lot of potential for making efficient catalysts, electrochemical energy-conversion devices, and economical antibacterial agents.
机译:?2022 Elsevier Ltd 和 Techna Group S.r.l.双金属掺杂是一种最先进的技术,用于改善析氧反应 (OER) 的电催化特性并增强材料的抗菌活性。采用溶胶-凝胶处理法成功制备了一系列稀土双金属掺杂Pr2O3电催化剂(Pr2CeMO3,M = Sm,Yb,Er)。使用FESEM、EDX、XRD、FTIR、IV、CV、LSV、EIS和ECSA等先进技术研究了生长产品的抗菌和电化学应用以及物理特性。所制备的产物保留了单斜晶系Pr2O3结构,并成功掺杂了稀土元素。从FESEM分析来看,生长产物具有颗粒状砾岩形状、冰冷的单斜晶系、不规则的层状形状和结晶良好的晶粒,具有板状形态。EDX 已确认生长样品中存在金属元素 Pr、Ce、Sm、Yb 和 Er。电化学测试表明,Pr2CeSmO3在1.0 M KOH电解液中具有189 mV的超低过电位,达到10 mAcm?2密度,并且具有较低的Tafel斜率(75 mV/dec),用于析氧反应(OER)。此外,Pr2CeSmO3电催化剂对OER的电催化效率非常高(>16 h)。抗菌试验表明,所有生长的单掺杂和双掺杂纳米结构均具有良好的抑菌性能,但Pr2CeSmO3对大肠杆菌、肺炎克雷伯菌、金黄色葡萄球菌和寻常疟原虫菌株均表现出较强的抑制活性,最大抑制区直径分别为30、32、35和31 mm。这种低成本的稀土双金属掺杂材料生产方法在制造高效催化剂、电化学能量转换器件和经济型抗菌剂方面具有很大的潜力。

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