Ben Salem B, Ltaief W, Ben Ameur S, Guermazi H, Guermazi S, Duponchel B, Leroy G
Laboratory of Materials for Energy and Environment, and Modelling, Faculty of Science, University of Sfax Soukra Road km 4 PB 1171-3038 Sfax Tunisia
Unity of Dynamic and Structure of Molecular Materials (UDSMM), University Littoral Côte d'Opale (ULCO) Calais France.
RSC Adv. 2025 May 6;15(18):13825-13837. doi: 10.1039/d5ra00756a. eCollection 2025 Apr 28.
In the present work, we have synthesized an n-ZnO/p-NiO (1 : 1 molar ratio) heterostructure the hydrothermal method, effectively coupling n- and p-type semiconductors. Raman spectroscopy and X-ray diffraction (XRD) analyses confirmed the successful synthesis of ZnO/NiO composite nanopowders. Based on UV-vis absorbance/reflectance data, the direct optical bandgap is estimated to be around 3.02 and 3.31 eV, attributed respectively to the ZnO and NiO phases. Additionally, the photoluminescence spectrum shows three broad emission bands in the visible range around 410, 453, and 507 nm, attributed to defects such as metal interstitials, anti-oxygen sites, and oxygen vacancies, respectively. These defects will contribute to enhancing the electrical conductivity of the ZnO/NiO nanocomposite. The electrical conductivity is approximately 10 S cm higher than that of pure NiO, confirming the improved conduction properties of the prepared nanocomposite. Additionally, the BET analysis revealed a significant specific surface area, which is favorable for catalytic applications. The photocatalytic activities of the ZnO/NiO heterojunction in the degradation of methylene blue (MB) and methyl orange (MO) dyes were investigated under natural solar irradiations. Photocatalytic degradation efficiencies were estimated through the evaluation of the decrease of the dye's characteristic absorbance bands (MB: 664 nm, MO: 464 nm). The nanocomposite shows good photocatalytic activity after 180 min, with a faster degradation rate of MB.
在本工作中,我们采用水热法合成了一种n-ZnO/p-NiO(摩尔比1:1)异质结构,有效地耦合了n型和p型半导体。拉曼光谱和X射线衍射(XRD)分析证实了ZnO/NiO复合纳米粉末的成功合成。基于紫外可见吸收/反射数据,直接光学带隙估计约为3.02和3.31 eV,分别归因于ZnO和NiO相。此外,光致发光光谱在410、453和507 nm左右的可见光范围内显示出三个宽发射带,分别归因于金属间隙、抗氧位点和氧空位等缺陷。这些缺陷将有助于提高ZnO/NiO纳米复合材料的电导率。其电导率比纯NiO高约10 S/cm,证实了所制备纳米复合材料的导电性能得到改善。此外,BET分析显示出显著的比表面积,这有利于催化应用。在自然太阳光照射下,研究了ZnO/NiO异质结在降解亚甲基蓝(MB)和甲基橙(MO)染料方面的光催化活性。通过评估染料特征吸收带(MB:664 nm,MO:464 nm)的降低来估计光催化降解效率。该纳米复合材料在180分钟后显示出良好的光催化活性,对MB的降解速率更快。