利用油杉绿色合成磁铁矿纳米粒子及其电光表面等离子共振特性

Sari Wahyuni, Muhammad Riswan, Rivaldo Marsel Tumbelaka, Rona Cuana, N. Istiqomah, E. Suharyadi
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引用次数: 0

摘要

在绿色合成的磁铁矿(Fe3O4)纳米粒子(MNPs)的表面等离子体共振(SPR)系统中应用外部电场,对于提高 SPR 检测信号非常有前景。MNPs 的电光表面等离子体共振(EOSPR)行为已经成功实现。在本研究中,我们采用绿色合成法从油杉提取物中合成了 MNPs。绿色合成的优点包括工艺安全、经济、清洁和生态友好。X 射线衍射结果表明,MNPs 的晶体尺寸约为 9.2 nm,具有反尖晶石面心立方晶体结构。傅立叶变换红外表征显示,在波数 569 cm-1 和 629 cm-1 处存在 Fe-O 键,表明 MNPs 已成功形成。样品的饱和磁化率为 55.3 emu/g。未添加 MNP 的 SPR 系统 Prism/Au 薄膜/空气的 SPR 角为 44.66°。经 MNPs 沉积和 0 V、2 V、4 V 和 6 V 的电压诱导后,SPR 角分别变为 44.87°、44.90°、44.95° 和 45.12°。添加 MNPs 和外部电场会导致 SPR 角度增大。这项研究的结果可为开发可进行电操纵的光学器件提供新的见解,并有望在未来的生物传感器中得到应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Green Synthesis of Magnetite Nanoparticles using Moringa oleifera and their Electro-Optic Surface Plasmon Resonance Properties
The application of an external electric field to the surface plasmon resonance (SPR) system of green-synthesized magnetite (Fe3O4) nanoparticles (MNPs) is very promising for increasing the SPR detection signal. Electro-optic surface plasmon resonance (EOSPR) behavior of MNPs has been successfully carried out. The EOSPR system was investigated using the Kretschmann configuration with the prism/Au thin film/MNPs/air layer arrangement and applying an electric voltage of 0 V, 2 V, 4 V, and 6 V. In this study, we synthesized MNPs using the green synthesis approach from moringa oleifera extract. The benefits of green synthesis include being safe, affordable, clean, and ecologically friendly processes. X-ray diffraction results obtained crystal size of the MNPs is about 9.2 nm with inverse spinel face-centered cubic crystal structure. Fourier transforms infrared characterization showed the presence of Fe-O bonds at wave numbers 569 cm-1 and 629 cm-1, indicating that MNPs were successfully formed. The saturation magnetization of the samples is 55.3 emu/g. The SPR angle of the SPR system Prism/Au thin film/air without the addition of MNPs is 44.66°. After being deposited by MNPs and induced by a voltage of 0 V, 2 V, 4 V, and 6 V, the SPR angles changed to 44.87°, 44.90°, 44.95° and 45.12°. The addition of MNPs and an external electric field causes the SPR angle to increase. The results of this study can provide new insights into the development of optical devices that can be manipulated electrically and have the potential for future biosensor applications.
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