前沿|探索用于制氢和亚甲基蓝修复的 Mo-ZnO@NF:太阳光驱动催化作用

IF 1.9 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY Frontiers in Physics Pub Date : 2024-05-27 DOI:10.3389/fphy.2024.1416563
Yogita Padwal, Ratna Chauhan, Rajani Panchang, Hassan Fouad, Suresh W. Gosavi
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引用次数: 0

摘要

在本研究中,我们阐明了通过水热法制造的钼(Mo)掺杂氧化锌(ZnO)纳米花(Mo-ZnO@NF)的合成和表征,展示了它们在制氢和染料降解方面的潜在应用。这些纳米花的成功合成是通过在氧化锌晶格中有意识地加入 Mo 离子实现的,从而产生了独特的分层花状形貌。利用 XRD、拉曼、FESEM 和紫外-可见光谱等一系列分析技术,对纳米花进行了全面的结构、形态和光学分析。X 射线衍射分析证实了六方菱锰矿晶体结构的保留,并伴有表明钼离子整合的明显峰值移动。FESEM 成像进一步阐明了 Mo-ZnO 的花状结构,突出了其错综复杂的形态特征。光催化评估揭示了 Mo-ZnO@NF 的显著功效,在短短 40 分钟的时间内,氢气进化率达到 2024 mmol/h/g,亚甲基蓝(MB)染料降解率达到 97%,这是前所未有的。此外,原始氧化锌与不同钼掺杂浓度(从 1%到 5%不等)之间的比较研究强调了氧化锌中 1%钼的最佳掺杂浓度。这一浓度阈值可产生卓越的光催化性能,这可能归因于电荷载流子分离的增强和有利于催化反应的表面积的增加。总之,这项研究不仅加深了我们对 Mo-ZnO@NF 纳米结构的理解,而且还阐明了优化其光催化功效以用于各种环境修复应用的关键见解。
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Frontiers | Exploring Mo-ZnO@NF for hydrogen generation and methylene blue remediation: sunlight-driven catalysis
In this study, we elucidate the synthesis and characterization of molybdenum (Mo) doped zinc oxide (ZnO) nanoflowers (Mo-ZnO@NF) fabricated via a hydrothermal approach, showcasing their potential application in hydrogen generation and dye degradation. The successful synthesis of these nanoflowers is achieved through the deliberate incorporation of Mo ions into the ZnO lattice, yielding a distinctive hierarchical flower-like morphology. Comprehensive structural, morphological, and optical analyses are conducted employing a suite of analytical techniques, encompassing XRD, Raman, FESEM, and UV-Visible spectroscopy. XRD analysis confirms the retention of the hexagonal wurtzite crystal structure, accompanied by discernible peak shifts indicative of Mo ion integration. FESEM imaging further elucidates the flower-like architecture of Mo-ZnO, underscoring the intricate morphological features. Photocatalytic assessment reveals the remarkable efficacy of Mo-ZnO@NF, as evidenced by an unprecedented hydrogen evolution rate of 2024 mmol/h/g and 97% Methylene Blue (MB) dye degradation within a mere 40-minute timeframe. Furthermore, a comparative investigation between pristine ZnO and varying Mo doping concentrations (ranging from 1% to 5%) underscores the optimal doping concentration of 1% Mo in ZnO. This concentration threshold is shown to engender superior photocatalytic performance, potentially attributed to enhanced charge carrier separation and increased surface area conducive to catalytic reactions. Overall, this study not only advances our understanding of Mo-ZnO@NF nanostructures but also elucidates key insights into optimizing their photocatalytic efficacy for diverse environmental remediation applications.
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来源期刊
Frontiers in Physics
Frontiers in Physics Mathematics-Mathematical Physics
CiteScore
4.50
自引率
6.50%
发文量
1215
审稿时长
12 weeks
期刊介绍: Frontiers in Physics publishes rigorously peer-reviewed research across the entire field, from experimental, to computational and theoretical physics. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, engineers and the public worldwide.
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