傅里叶变换红外光谱
生物高聚物
银纳米粒子
Zeta电位
热重分析
丝胶
分散性
核化学
纳米颗粒
超声
化学
化学工程
扫描电子显微镜
热稳定性
材料科学
分析化学(期刊)
无定形固体
动态光散射
红外光谱学
高分子化学
膜
光谱学
抗静电剂
聚合物
纳米凝胶
丝绸
作者
Muhammad Summer,Shaukat Ali,Hafiz Muhammad Tahir,Rimsha Abaidullah,Hunaiza Tahir,Shumaila Mumtaz,Samaira Mumtaz,Samima Butt,Muniba Tariq
标识
DOI:10.1002/macp.202300124
摘要
Abstract This current study is designed to incorporate sericin protein as a reducing, capping, and stabilizing agent to synthesize sonication‐mediated silver nanoparticles. Fabrication of sericin‐reduced silver nanoparticles (Sr‐AgNPs) is confirmed using UV–visible spectrophotometry, zeta sizer, scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR), X‐Ray diffraction (XRD), and thermogravimetric analysis (TGA). UV–Vis spectral peak of Sr‐AgNPs is observed at 420–440nm while the average size is found between 3 to 30 nm. SEM also confirms the reduction of large‐sized (1–40 µm) sericin macromolecules into nanometric hexagonal and triangular silver nanoparticles with a normal distribution (polydispersity index > 0.5). FTIR peaks from 500 to 4000cm −1 are analyzed for sericin while Sr‐AgNPs peaks with minor shifts (700–1000 cm −1 (COOCO stretching) in Sr‐AgNPs) are also observed. XRD peaks of 2 θ at 27° with multiple low peaks at 38.2°, 47°, 49°, and 63.8° authenticate the amorphous nature of sericin and sharp peaks at 36°, 48°, 54.3°, and 61.9° with miller indices (hkl) of 98, 111, 200, and 211, assess the crystalline structure of Sr‐AgNPs. TGA reveals that sericin enhances the stability of silver NPs at high temperature (200–600 °C) by lowering the percentage weight loss from 70–80% to 60–65%.
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