Microstructure and Antibacterial Properties of Chitosan-Fe 3 O 4 -AgNP Nanocomposite.
Hartati HartatiSubaer SubaerHasri HasriTeguh WibawaHasriana HasrianaPublished in: Nanomaterials (Basel, Switzerland) (2022)
The goal of this research is to synthesize and characterize Fe 3 O 4 @Chitosan-AgNP nanocomposites in order to determine their antibacterial activity. The research methods include the synthesis of Fe 3 O 4 @Chitosan-AgNP nanocomposites, as well as the characterization of nanoparticles using scanning electron microscopy (SEM), transmission electron microscopy (TEM), X-ray diffraction (XRD), Fourier transform infrared (FTIR) analysis, and subsequent antibacterial activity tests. The study's findings demonstrated the successful synthesis of Fe 3 O 4 @Chitosan-AgNP nanocomposites, followed by nanoparticle characterization using SEM, TEM, XRD, and FTIR. Based on the XRD results, the conjugation of Fe 3 O 4 @Chitosan-AgNP nanocomposites has been successfully formed, as evidenced by the appearance of characteristic peaks of Fe 3 O 4 , chitosan, and AgNPs. According to the FTIR results, the interaction between chitosan-AgNPs and conjugated Fe 3 O 4 occurred via the N atom in the NH 2 group and the O atom in the OH group, and C=O. The SEM and TEM images also show that the Fe 3 O 4 @Chitosan-AgNP conjugation is a nanoparticle-based composite material. The combination of nanocomposites Fe 3 O 4 @Chitosan-AgNPs has antibacterial activity, inhibiting the growth of bacteria such as Bacillus cereus and Escherichia coli .
Keyphrases
- drug delivery
- electron microscopy
- wound healing
- silver nanoparticles
- hyaluronic acid
- escherichia coli
- reduced graphene oxide
- carbon nanotubes
- high resolution
- deep learning
- photodynamic therapy
- multiple sclerosis
- mass spectrometry
- magnetic resonance imaging
- visible light
- magnetic resonance
- white matter
- convolutional neural network
- pseudomonas aeruginosa
- bacillus subtilis