Irshad Asma, Jawad Rabbia, Ishtiaq Uzair, Joly Nicolas, Bejaoui Bochra, M'Hamdi Naceur, Martin Patrick, Mubashar Firdous
School of Biochemistry and Biotechnology, University of the Punjab, Lahore, Pakistan.
School of Biological Sciences, University of the Punjab, Lahore, Pakistan.
Heliyon. 2024 Sep 29;10(19):e38414. doi: 10.1016/j.heliyon.2024.e38414. eCollection 2024 Oct 15.
The surface protection of leather supplies is a major concern worldwide due to its susceptibility to microbial growth. Different methods are employed to protect leather, their results ends up with the environmental pollution and human safety issues. Nanoparticles with excellent antimicrobial potential can provide sustainable protection to leather accessories. The present work represented a comprehensive investigation into the preparation and characterization of titanium dioxide-doped zinc oxide (ZnO/TiO NPs) nanoparticles and their exploring as a potential antimicrobial agent in the leather industry. ZnO nanoparticles were synthesized through Sol-gel method by the reduction of zinc acetate dihydrate black cardamom seed's extract and subsequently doped with TiO. The optical, structural, and morphological features of nanoparticles were thoroughly scrutinized through UV-visible spectroscopy, XRD, FT-IR, and SEM-EDAX. The UV-visible spectrum showed enhanced performance between 300 and 350 nm and various peaks of the FT-IR spectrum, i.e. 3315.53, 1566.20, 1402.25, 1340.53, 1014.56, 921.97, 690.52, and 677.01 cm, revealed chemical bonds that prove the correct doping of TiO in ZnO nanoparticles. The characteristic peaks obtained from XRD at 2Ө of 32°, 35.5°, 37.2°, 47.9°, 55.6° 63.51°, and 70° intimated to the crystal planes of (100), (002), (101), (102), (110), (103), and (112), respectively. SEM-EDAX images revealed the roughly spherical but agglomerated structure of nanoparticles with size 45.44 nm. Furthermore, minimum inhibitory concentration (MIC), antimicrobial potential, and anti-biofilm potential analyses of nanoparticles, against all selected microorganisms ( and ) provided valuable insights into physical and biological properties of the nanoparticles. The clear zones of inhibition (29-30 mm) against these pathogenic strains showed exceptional antimicrobial action of the ZnO/TiO NPs. Overall, these results provide an approachable method to synthesize ZnO/TiO nanoparticles and their antimicrobial ability will prove to be beneficial for the protection of leather materials from various microbial contaminations.
由于皮革制品易受微生物生长影响,其表面保护是全球主要关注的问题。人们采用了不同的方法来保护皮革,但其结果却导致了环境污染和人类安全问题。具有优异抗菌潜力的纳米颗粒可为皮革制品提供可持续保护。本研究对二氧化钛掺杂氧化锌(ZnO/TiO NPs)纳米颗粒的制备与表征进行了全面研究,并探索其作为皮革工业中潜在抗菌剂的应用。通过溶胶 - 凝胶法,利用黑小豆种子提取物还原二水合醋酸锌合成了ZnO纳米颗粒,随后对其进行TiO掺杂。通过紫外可见光谱、X射线衍射(XRD)、傅里叶变换红外光谱(FT - IR)和扫描电子显微镜 - 能谱分析(SEM - EDAX)对纳米颗粒的光学、结构和形态特征进行了深入研究。紫外可见光谱显示在300至350 nm之间性能增强,FT - IR光谱的各个峰,即3315.53、1566.20、1402.25、1340.53、1014.56、921.97、690.52和677.01 cm,揭示了化学键,证明了TiO在ZnO纳米颗粒中的正确掺杂。XRD在2Ө为32°、35.5°、37.2°、47.9°、55.6°、63.51°和70°处获得的特征峰分别对应于(100)、(002)、(101)、(102)、(110)、(103)和(112)晶面。SEM - EDAX图像显示纳米颗粒呈大致球形但团聚的结构,尺寸为45.44 nm。此外,对纳米颗粒针对所有选定微生物(此处原文缺失具体微生物名称)的最小抑菌浓度(MIC)、抗菌潜力和抗生物膜潜力分析,为纳米颗粒的物理和生物学性质提供了有价值的见解。对这些致病菌株的明显抑菌圈(29 - 30 mm)显示了ZnO/TiO NPs卓越的抗菌作用。总体而言,这些结果提供了一种合成ZnO/TiO纳米颗粒的可行方法,其抗菌能力将被证明对保护皮革材料免受各种微生物污染有益。