掺镍酒石酸锌(Ni@ZnT)纳米晶体:合成、光学特性和抗菌活性

Charushila Pawar , Madhuri Patil
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引用次数: 0

摘要

本研究采用溶胶-凝胶法合成了掺杂镍的酒石酸锌纳米晶体(Ni@ZnT NCs),以研究其光学性质和抗菌活性。通过扫描电子显微镜研究,这些 NCs 呈现出不规则的形态。通过 X 射线衍射研究了它们的结晶性质和 45 纳米的平均结晶尺寸。利用能量色散 X 射线确认了锌 (Zn)、镍 (Ni)、碳 (C)、氢 (H) 和氧 (O) 元素的存在。傅立叶变换红外光谱分析确定了几个官能团,如 O-H 伸展(3461.6 cm-1)、CO 伸展模式(2367.55 cm-1)和 Ni-Zn-O 伸展振动(低于 800 cm-1)。热重分析证实了其热稳定性。紫外可见光谱法研究了其光学特性;吸收峰代表 Zn-Ni 转变,波长约为 336 nm,带隙为 3.86 eV,该光谱法还用于计算 280 nm 波长处的折射率和消光系数。对于 ZnT 和 Ni@ZnT NCs,最大吸收λ分别为 295 纳米和 278 纳米。研究评估了 ZnT 和 Ni@ZnT NCs 对枯草杆菌和大肠杆菌的抗菌活性;对于这些菌株,NCs(15.3 毫米和 15.6 毫米)比 ZnT(13.6 毫米和 12.3 毫米)显示出更大的抑菌区。研究还评估了这些材料对一些真菌菌株(如金青霉、黑曲霉、白色念珠菌和镰刀菌)的抗真菌活性,抑制区在 12 至 13.6 毫米之间,两种材料之间存在显著差异。因此,本研究成功合成了 Ni@ZnT NCs,并对其光学性质和抗菌活性进行了研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Nickel-doped zinc tartrate (Ni@ZnT) nanocrystals: Synthesis, optical properties, and antimicrobial activity

Nickel-doped zinc tartrate (Ni@ZnT) nanocrystals: Synthesis, optical properties, and antimicrobial activity
This work used the sol-gel method to synthesize nickel-doped zinc tartrate nanocrystals (Ni@ZnT NCs) to study their optical properties and antimicrobial activities. Using the Scanning electron microscopy study, these NCs show irregular-shaped morphology. Their crystalline nature and average crystalline size of 45 ​nm were studied by X-ray diffraction. Using an Energy-Dispersive X-ray confirmed the presence of zinc (Zn), nickel (Ni), carbon (C), hydrogen (H), and oxygen (O) elements. FTIR analysis was used to identify several functional groups like O–H stretching (3461.6 ​cm−1), CO stretching mode (2367.55 ​cm−1), and stretching vibrations of Ni–Zn–O (below 800 ​cm−1). The thermal stability was confirmed by thermogravimetric analysis. UV–Vis spectroscopy studied the optical properties; an absorption peak represents the Zn–Ni transition at about 336 ​nm and a band gap of 3.86 ​eV and was also used to calculate the refractive index and extinction coefficient at 280 ​nm. For ZnT and Ni@ZnT NCs, the maximum absorption λ was found to be 295 ​nm and 278 ​nm. The antibacterial activity of ZnT and Ni@ZnT NCs was evaluated against Bacillus subtilis and Escherichia coli; for these strains, the NCs (15.3 ​mm and 15.6 ​mm) showed a somewhat larger zone of inhibition than ZnT (13.6 ​mm and 12.3 ​mm). The study also evaluated the antifungal activity of these materials against some fungal strains, such as Penicillium chrysogenum, Aspergillus niger, Candida albicans, and Fusarium spp, the zone of inhibition varied from 12 to 13.6 ​mm, and there was a significant difference between the two materials. Therefore, this work successfully synthesized Ni@ZnT NCs and studied their optical properties and antimicrobial activity.
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