Enhanced magnetic ordering, and microwave-shielding and photocatalytic performance in hydrogenated ZnO nanoparticles

IF 6.9 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
T.L. Phan , B.D. Tu , T.A. Ho , T.V. Quang , Dimitar N. Petrov , B.T. Huy , D.-H. Kim , N.T. Dang
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Abstract

Optical, photocatalytic, magnetic and microwave-shielding properties correlated with electronic structures of ZnO nanoparticles (NPs) hydrogenated at the annealing temperature (Tan) ranging from 400 to 900 °C have been investigated. All fabricated samples are hexagonally monophasic with more lattice defects generated by hydrogenation that have changed the bandgap energy, and the features of luminescence and Raman-scattering spectra. Hydrogenation-induced defects also stimulated an anomalous Raman mode (AM) peaked at ∼ 477 cm−1. Interestingly, all samples exhibit ferromagnetism. Magnetic ordering gradually increases when Tan increases from 400 to 700 °C, but decreases for Tan > 700 °C. Upon the results obtained from analyzing X-ray absorption, magnetic-resonant and luminescent spectra, we believe that hydrogenation-induced ferromagnetism and AM are mainly due to Zn-related defects. These together with other hydrogen-related defects could form clusters to cause the magnetic coercivity. For Tan > 700 °C, the defects migrate to grain surfaces/boundaries while unstable defects move out of the ZnO lattice that reduce magnetic ordering. We have also found ZnO NPs hydrogenated at 700 °C with suitable thicknesses absorbing above 99.5 % incident microwaves at frequencies 8.6 and 10.4 GHz, corresponding to reflection-loss magnitudes of 25 ∼ 38 dB. Concurrently, this sample shows the best photocatalytic performance of Rhodamine-B (RhB) degradation, about 67 % RhB decomposed under visible light irradiation for 3 h. Though its photodegradation kinetics obey the pseudo-first-order model, their pseudo-rate constant is dependent on irradiation time, which is related to the location of accessible-active sites on both surface and internal layers of NPs.

Abstract Image

Abstract Image

氢化ZnO纳米颗粒的磁有序、微波屏蔽和光催化性能增强
研究了在400 ~ 900 °C的退火温度(Tan)下加氢的ZnO纳米粒子(NPs)的光学、光催化、磁性和微波屏蔽性能与电子结构的关系。所有制备的样品都是六边形单相,氢化产生了更多的晶格缺陷,这些缺陷改变了带隙能量,并改变了发光和拉曼散射光谱特征。氢化诱导的缺陷也激发了异常拉曼模式(AM),峰值为 ~ 477 cm−1。有趣的是,所有样品都表现出铁磁性。从400 ~ 700 °C,随着Tan的增加,磁性有序度逐渐增加,而在 >; 700 °C时,磁性有序度降低。从x射线吸收光谱、磁共振光谱和发光光谱的分析结果来看,我们认为氢化铁磁性和AM主要是由锌相关缺陷引起的。这些与其他氢相关的缺陷一起可以形成团簇,从而引起磁性矫顽力。对于Tan >; 700 °C,缺陷迁移到晶粒表面/边界,而不稳定缺陷从ZnO晶格中移出,从而降低了磁有序度。我们还发现了在700 °C下氢化的ZnO NPs,其合适的厚度吸收了频率为8.6和10.4 GHz的99.5% %以上的入射微波,对应的反射损耗幅度为25 ~ 38 dB。同时,该样品对罗丹明- b (rhodamin - b, RhB)具有最佳的光催化降解性能,在可见光照射3 h下,rhodamin - b降解率约为67 %。虽然其光降解动力学服从伪一阶模型,但其伪速率常数与辐照时间有关,而辐照时间与NPs表面和内层可达活性位点的位置有关。
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来源期刊
Applied Surface Science
Applied Surface Science 工程技术-材料科学:膜
CiteScore
12.50
自引率
7.50%
发文量
3393
审稿时长
67 days
期刊介绍: Applied Surface Science covers topics contributing to a better understanding of surfaces, interfaces, nanostructures and their applications. The journal is concerned with scientific research on the atomic and molecular level of material properties determined with specific surface analytical techniques and/or computational methods, as well as the processing of such structures.
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