三维/二维/一维:ZnFe2O4/NiAl-LDH/MWCNTs 纳米复合材料的多功能平台,用于光催化提纯地乐酚和电催化氧气进化反应。

IF 7.7 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Environmental Research Pub Date : 2024-11-14 DOI:10.1016/j.envres.2024.120367
Dong-Eun Lee , Ahmad Husain , Azam Khan , Mohtaram Danish , Wan-Kuen Jo
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引用次数: 0

摘要

将光催化与电催化相结合可能是应对环境和能源挑战的一种协同方法。在此背景下,我们采用固态方法合成了一系列纳米复合材料,包括简单研磨和随后的热处理,用于光催化提纯地乐酚和电催化氧进化(OER)。有趣的是,在合成的一系列材料中,重量百分比为 40 的 3D/2D/1D:ZnFe2O4/NiAl-LDH/MWCNTs 三元纳米复合材料(40-NZM)与纯材料相比,地乐酚的解毒效率和 OER 效率都有很大提高。重要的是,在可见光光源下,在 75 分钟的辐照时间内观察到了约 98% 的地乐酚解毒率。值得注意的是,40-NZM 纳米复合材料表现出最高的速率常数值(k = 4.1×10-2 min-1)和良好的 R2(0.98)参数。此外,40-NZM 还显示出良好的电催化 OER 性能,只需要 217 mV 的过电位就能达到 10 mAcm-2 的电流密度,且塔菲尔斜率较小,为 66.6 mVdec-1。此外,还通过记录 2000 个循环伏安(CV)周期测试了其长期稳定性。结果表明,40-NZM 可以在更长的时间内保持其催化活性,因为即使在 2000 个循环伏安周期后,它也只需要 227 mV 就能达到 10 mAcm-2。因此,40-NZM 纳米复合材料的这些出色特性凸显了其在催化水净化和可持续能源转换方面的巨大潜力。
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Versatile platform of 3D/2D/1D:ZnFe2O4/NiAl-LDH/MWCNTs nanocomposite for photocatalytic purification of dinoseb and electrocatalytic O2 evolution reaction
Integrating photocatalysis with electrocatalysis may represent a synergistic approach to address environmental and energy challenges. In this context, we explored synthesizing a series of nanocomposite materials using a solid-state approach involving simple grinding and subsequent thermal treatment for the photocatalytic purification of dinoseb and electrocatalytic oxygen evolution (OER). Interestingly, among the series of synthesized materials, 40 wt percentage of 3D/2D/1D:ZnFe2O4/NiAl-LDH/MWCNTs ternary nanocomposite (40-NZM) showed highly improved dinoseb detoxification and OER efficiencies compared to those of pure materials. Importantly, approximately 98% detoxification of dinoseb was observed within 75 min of irradiation time under a visible light source. Remarkably, the 40-NZM nanocomposite exhibited the highest rate constant value (k = 4.1 × 10−2 min−1) with a favorable R2 (0.98) parameter. Furthermore, 40-NZM showed promising electrocatalytic OER performance, requiring only 217 mV of overpotential to achieve 10 mAcm−2 of current density with a smaller Tafel slope of 66.6 mVdec−1. Additionally, long-term stability was tested by recording 2000 cyclic voltammetry (CV) cycles. The results revealed that 40-NZM could maintain its catalytic activity for a longer duration as it required only 227 mV to attain 10 mAcm−2 even after 2000 CV cycles. Consequently, these outstanding characteristics of 40-NZM nanocomposite underscore the significant potential for catalytic water purification and sustainable energy conversion.
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来源期刊
Environmental Research
Environmental Research 环境科学-公共卫生、环境卫生与职业卫生
CiteScore
12.60
自引率
8.40%
发文量
2480
审稿时长
4.7 months
期刊介绍: The Environmental Research journal presents a broad range of interdisciplinary research, focused on addressing worldwide environmental concerns and featuring innovative findings. Our publication strives to explore relevant anthropogenic issues across various environmental sectors, showcasing practical applications in real-life settings.
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