Simulation, synthesis, and characterization of Ni–Co and its co-doping in ZnO for energy applications

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
RSC Advances Pub Date : 2025-07-03 DOI:10.1039/D5RA02746B
Nguyen Cao Hien, Nguyen Hoc Thang, Tahir Mahmood, Agnieszka Pawlicka, Mamoona Anwar, Muhammad Munir, Abdul Ghafoor and Tran Le Anh Khoa
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Abstract

Pristine ZnO, ZnO doped with nickel (Ni), cobalt (Co), and their co-doped form (NiCo) nanoparticles were successfully synthesized via the sol–gel method to explore their potential for energy-related applications. The structural, morphological, and optical characteristics of the prepared samples were systematically characterized using X-ray diffraction (XRD), scanning electron microscopy (SEM), energy-dispersive X-ray spectroscopy (EDS), Fourier-transform infrared spectroscopy (FTIR), photoluminescence (PL), and UV-vis spectroscopy. The XRD analysis confirmed that all samples retained a hexagonal wurtzite structure, with minor peak shifts indicating successful incorporation of dopant ions into the ZnO lattice. The EDX spectra verified the presence of Zn, Ni, Co, and O elements, while FTIR spectra confirmed the characteristic functional groups and chemical bonds within the ZnO matrix. SEM imaging revealed that co-doping produced smaller, more uniform nanoparticles with increased surface roughness, beneficial for surface-related applications. Photoluminescence studies showed a red shift in emission from 371 nm (pure ZnO) to 379 nm (NiCo-ZnO) and a reduced optical bandgap from 3.34 eV to 3.27 eV, indicating enhanced defect states and improved charge carrier dynamics. UV-vis absorption spectra further revealed a bandgap of 3.35 eV for NiCo-ZnO at 370 nm, reflecting complex optical behavior due to co-doping. To optimize synthesis conditions, a fuzzy logic-based simulation was employed, providing predictive insights into bandgap, crystallite size, and optical properties. Notably, the simulation results closely matched the experimental data, validating the modeling approach. The co-doped ZnO samples demonstrated good reproducibility and optical stability over time, maintaining consistent optical absorption and emission characteristics after multiple testing cycles and storage under ambient conditions. These findings highlight that Ni and Co co-doping effectively tailors the optical and electronic properties of ZnO, making it a promising material for energy storage devices, photocatalytic applications, and sensing technologies. The enhanced defect states, increased surface area, and modified band structure collectively contribute to improved performance in real-world functional devices.

Abstract Image

Ni-Co及其在ZnO中共掺杂的模拟、合成和表征
通过溶胶-凝胶法成功合成了纯净ZnO、掺杂镍(Ni)、钴(Co)的ZnO及其共掺杂形式(NiCo)纳米粒子,探索了它们在能源相关领域的应用潜力。利用x射线衍射(XRD)、扫描电镜(SEM)、能量色散x射线能谱(EDS)、傅里叶变换红外光谱(FTIR)、光致发光(PL)和紫外-可见光谱对制备样品的结构、形态和光学特性进行了系统表征。XRD分析证实,所有样品都保留了六方纤锌矿结构,有轻微的峰移表明掺杂离子成功地掺入了ZnO晶格。EDX光谱证实了ZnO基体中存在Zn、Ni、Co和O元素,FTIR光谱证实了ZnO基体中存在特征官能团和化学键。扫描电镜成像显示,共掺杂产生更小、更均匀的纳米颗粒,表面粗糙度增加,有利于表面相关应用。光致发光研究表明,发射光谱从371 nm(纯ZnO)红移到379 nm (NiCo-ZnO),光带隙从3.34 eV减小到3.27 eV,表明缺陷态增强,载流子动力学改善。紫外可见吸收光谱进一步显示,NiCo-ZnO在370 nm处的带隙为3.35 eV,反映了共掺杂导致的复杂光学行为。为了优化合成条件,采用了基于模糊逻辑的模拟,提供了对带隙、晶体尺寸和光学性质的预测性见解。值得注意的是,仿真结果与实验数据非常吻合,验证了建模方法的有效性。随着时间的推移,共掺杂ZnO样品表现出良好的再现性和光学稳定性,在多次测试循环和环境条件下储存后保持一致的光吸收和发射特性。这些发现突出表明,Ni和Co共掺杂有效地调整了ZnO的光学和电子特性,使其成为储能器件,光催化应用和传感技术的有前途的材料。增强的缺陷状态、增加的表面积和改进的能带结构共同有助于提高实际功能器件的性能。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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