SINTESIS DAN KARAKTERISASI NPP PERAK (Ag-NPs) MENGGUNAKAN EKSTRAK KULIT BUAH NAGA SEBAGAI BIOREDUKTOR

Rosman Parningotan, Yanuar Hamzah

Abstract


Silver nanoparticle were successfully synthesized by using the red dragon fruit peel extract as a bioreductor. The synthesis process is mixed the solution of silver nitrate (AgNO3) 1mM and red dragon fruit peel extract with a volume ratio 1 : 5 and and then mixed with a few drops of NaOH solution 1M until the solution has a pH of 10 each and then stirred using magnetic stirrer for 14 minutes for each sample then incubator. The sample are characterized using the Ultra Violet Visible (UV-Vis) spectroscopy resulting in the wavelength peaks and energy band gap at 416 nm and 2.98 eV. A functional group that plays a role in reducting AgNO3 using the Fourier Transform Infra-Red Spectroscopy (FTIR) show six major groups that have interval of 6023427 cm-1. The result of the X-Ray Diffraction (XRD) spectrum analysis saw a 10.07102.73 nm crystal size with the Face Center Cubic (FCC) crystalline structure and have an Ag2O impurity. From Scanning Electron Microscope (SEM) image shows that morphology of sample is still agglomerated. The findings of the present research lead to conclusion that the red dragon fruit peel was found to reduced the silver ions to silver nanoparticle.

Keywords


Silver nanoparticles; Red dragon fruit; UV-Vis; XRD; SEM

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References


1. Lin, J., Chen, R., Feng, S., Li, Y., Huang, Z., Xie, S., Yu, Y., Cheng, M., & Zeng, H. (2009). Rapid delivery of silver nanoparticles into living cells by electroporation for surface-enhanced Raman spectroscopy. Biosensors and Bioelectronics, 25(2), 388–394.

2. Adzani, H. & Rini, A. S. (2020). Sifat optik nanopartikel perak (Ag-Nps) menggunakan bioreduktor ekstrak kulit semangka kuning. Komunikasi Fisika Indonesia, 17(2), 104–107.

3. Mikrajudin, A. (2009). Pengantar nanosains. Bandung: ITB.

4. Handayani, W., Imawan, C., & Purbaningsih, S. (2010). Potensi ekstrak beberapa jenis tumbuhan sebagai agen pereduksi untuk biosintesis nanopartikel perak. Seminar Nasional Biologi, 558–567.

5. Haryono, A., Sondari, D., Harnami, S. B., & Randy, M. (2008). Sistesa Nanopartikel Perak Dan Potensi Aplikasinya. Journal of Industrial Research (Jurnal Riset Industri), 2(3).

6. Phongtongpasuk, S., Poadang, S., & Yongvanich, N. (2016). Environmental-Friendly Methods for Synthesis of Silver Nanoparticles from Dragon Fruit Peel Extract and Their Antibacterial Activities. Energy Procedia, 89, 239–247.

7. Shankar, S., Chorachoo, J., Jaiswal, L., & Voravuthikunchai, S. P. (2014). Effect of reducing agent concentrations and temperature on characteristics and antimicrobial activity of silver nanoparticles. Materials Letters, 137, 160–163.

8. Ogaji, I. J, Nep, E.I., & Audu-Peter, J. D. (2012). Advances in Natural Polymers as Pharmaceutical Excipient. Pharmaceutica Analytica Acta, 3(1), 1–16.

9. Taba, P., Parmitha, N. Y., & Kasim, S. (2019). Sintesis Nanopartikel Perak Menggunakan Ekstrak Daun Salam (Syzygium polyanthum) Sebagai Bioreduktor Dan Uji Aktivitasnya Sebagai Antioksidan. Indonesian Journal of Chemical Research, 7(1), 51–60.

10. Yanti, W. R. O. & Astuti, A. (2018). Sintesis Nanokristal Perak Menggunakan Ekstrak Kulit Buah Manggis (Garcinia mangostana L.). Jurnal Fisika Unand, 7(3), 286–291.




DOI: http://dx.doi.org/10.31258/jkfi.17.3.139-143

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