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Antimicrobial activity of citric acid functionalized iron oxide nanoparticles-Superparamagnetic effect

机译:柠檬酸官能化氧化铁纳米粒子的抗菌活性 - 超顺磁作用

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Magnetic nanoparticles offer several advantages for various applications including biomedical. However, the surface of nanoparticles must be functionalized. For biocompatibility of magnetic nanoparticles, they must possess superparamagnetic behavior with high saturation magnetization (M-s). For this purpose, we here report an application-oriented sol-gel route for the synthesis of iron oxide nanoparticles i.e. magnetite (Fe3O4). These magnetic nanoparticles are functionalized by different concentrations of citric acid such as 0.1 M, 0.2 M, 0.3 M, 0.4 M and 0.5 M. Typically, citric acid gets adsorbed on the surface of nanoparticles with one or two carboxylate groups leaving at least one carboxylic acid group on the surface making them hydrophilic to prevent agglomeration that allows conjugation with specific drugs. XRD results confirm the magnetite phase of iron oxide nanoparticles (un-functionalized). Magnetite phase and maghemite phase are observed within different concentrations 0.1 M, 0.2 M, 0.4 M and 0.5 M of citric acid functionalized iron oxide nanoparticles. FTIR analysis confirms the attachment/capping of citric acid on nanoparticles' surface through the band 1710 cm(-1) corresponding to C=O of COOH group. Moreover, Raman analysis confirms the presence of characteristic band at 670 cm(-1) attributed to Fe3O4 (Magnetite). Particle size analyzer indicates the hydrodynamic diameter size of similar to 25 nm after 0.3 M citric acid functionalized nanoparticles and zeta-potential analysis also confirms the functionalization of nanoparticles with citric acid. Citric acid functionalized nanoparticles show superparamagnetic behavior with saturation magnetization of 85emu/g (citric acid concentration 0.3 M). Magnetic properties are also studied at low temperatures (5K-300K at Max. field 50 KOe) to confirm the presence of superparamagnetic behavior with negligible coercivity (H-c) and increased saturation magnetization (100emu/g at 5K). 0.3 M citric acid functionalized nanoparticles (magnetite, superparamagnetic) appeared to be beneficial for antibacterial activity with zone of inhibition of 36 mm. The experimental analyses confirm that 0.3 M citric acid functionalized nanoparticles are promising candidate for biomedical applications.
机译:磁性纳米粒子为包括生物医学的各种应用提供了几个优点。然而,必须官能化纳米颗粒的表面。对于磁性纳米颗粒的生物相容性,它们必须具有高饱和磁化强度(M-S)的超顺磁性行为。为此目的,我们在此报告了一种取向涂料的溶胶 - 凝胶途径,用于合成氧化铁纳米颗粒I.磁铁矿(Fe3O4)。这些磁性纳米颗粒通过不同浓度的柠檬酸官能化,例如0.1m,0.2m,0.3m,0.4m和0.5米。通常,柠檬酸被吸附在纳米颗粒的表面上,其中一个或两个羧酸盐留下至少一个羧酸盐表面上的酸组使其亲水性以防止允许与特异性药物共轭的聚集。 XRD结果证实了氧化铁纳米颗粒的磁铁矿相(未官能化)。在不同浓度0.1M,0.2M,0.4M和0.5M的柠檬酸官能化氧化铁纳米粒子内观察到磁铁矿相和磁石相。 FTIR分析证实柠檬酸在纳米粒子表面上通过与COOH基团的C = O相对应的带1710cm(-1)对纳米颗粒表面的附着/覆盖。此外,拉曼分析证实了归因于Fe3O4(磁铁矿)的670cm(-1)的特征带的存在。粒度分析仪表明0.3米柠檬酸官能化纳米颗粒和Zeta-Position分析中的含有柠檬酸的纳米颗粒的官能化的流体动力直径尺寸。柠檬酸官能化纳米颗粒显示出85emu / g的饱和磁化强度的超顺磁性行为(柠檬酸浓度0.3μm)。还在低温下研究磁性(最大500k-300k。50 Koe),以确认具有可忽略的矫顽力(H-C)和增加饱和磁化强度(5K处的饱和磁化强度的超顺磁性行为的存在。 0.3M柠檬酸官能化纳米颗粒(磁铁矿,超顺磁)似乎有益于抑制36mm的抗菌活性。实验分析证实0.3M柠檬酸官能化纳米颗粒是生物医学应用的候选者。

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