IMPACT OF ZN-DOPPED ON SNEDDS/ZNXFE3-XO4 FORMULATION ON THEIR CRYSTAL STRUCTURE AND ANTIOXIDANT PERFORMANCE
Authors
Uvia Ardina Zahira , Nadiya Miftachul Chusna , Ahmad Taufiq , Sunaryono SunaryonoDOI:
10.29303/ipr.v8i2.428Published:
2025-02-06Issue:
Vol. 8 No. 2 (2025)Keywords:
SNEDDS, Zn2 , SNEDDS/ZnxFe3-xO4, Antioxidant PerformanceArticles
Downloads
How to Cite
Abstract
Self-Nano-Emulsifying Drug Delivery System (SNEDDS)/ZnxFe3-xO4 has been successfully formulated through the synthesis of ZnxFe3-xO4 by the coprecipitation method and SNEDDS/ZnxFe3-xO4 by the sonication method. This study is focused on the effect of Zn doping on the crystal structure and antioxidant performance of ZnxFe3-xO4 nanoparticles. ZnxFe3-xO4 samples were characterized using FTIR and XRD to determine the functional groups and structure of the sample, respectively. SNEDDS/ZnxFe3-xO4 samples were characterized using FTIR and Antioxidants with the DPPH method to determine the functional groups and antioxidants in the sample, respectively. The FTIR characterization results of the ZnxFe3-xO4 sample showed the emergence of Zn-O and Fe-O functional groups in the wave number range of 825-869 cm-1 and 560-594 cm-1, respectively. This indicates that Zn2+ doping was successfully synthesized and shifted the Fe3+ ion. The IR spectrum also shows that the higher the concentration of Zn2+ ions, the more significant the change in absorption intensity, indicating that more molecules absorb light at wave numbers of 825-869 cm-1. The XRD characterization results show that the ZnxFe3-xO4 nanoparticle structure is an inverse cubic spinel occupying the Fd3m crystal group. Based on the analysis of XRD data, the higher the concentration of Zn2+ doping, the smaller the size of the ZnxFe3-xO4 nanoparticles produced. The diffraction peak of the sample on the 311 plane shifts towards a smaller angle due to the effectiveness of Zn2+ ion doping, shifting the Fe3+ ion because the radius of the Zn2+ ion is larger than the Fe3+ one. The antioxidant performance analysis of SNEDDS/ZnxFe3-xO4 showed inhibition potential ranging from 11% to 15%, increasing with higher Zn²⁺ concentrations.References
D. S. Prawitasari, “Diabetes Melitus dan Antioksidan,” KELUWIH: Jurnal Kesehatan dan Kedokteran, vol. 1, no. 1, pp. 48–52, 2019.
D. Prasonto, E. Riyanti, and M. Gartika, “Uji Aktivitas Antioksidan Ekstrak Bawang Putih (Allium sativum),” ODONTO : Dental Journal, vol. 4, no. 2, p. 122, 2017.
J. Beno, A. P. Silen, and M. Yanti, “Covariance structure analysis of health-related indicators in elderly people living at home, focusing on subjective health status,” Braz Dent J., vol. 33, no. 1, pp. 1–12, 2022.
J. Patel, G. Kevin, A. Patel, M. Raval, and N. Sheth, “Design and development of a self-nanoemulsifying drug delivery system for telmisartan for oral drug delivery,” International Journal of Pharmaceutical Investigation, vol. 1, no. 2, p. 112, 2017.
N. Huda and I. Wahyuningsih, “Karakterisasi Self-Nanoemulsifying Drug Delivery System (SNEDDS) Minyak Buah Merah (Pandanus conoideus Lam.),” Jurnal Farmasi Dan Ilmu Kefarmasian Indonesia, vol. 3, no. 2, p. 49, 2018.
A. A. Date, N. Desai, R. Dixit, and M. Nagarsenker, “Self-nanoemulsifying drug delivery systems: Formulation insights, applications and advances,” Nanomedicine, vol. 5, no. 10, pp. 1595–1616, 2015.
S. Priyani, " Pengaruh Pengembangan Self-Nanoemulsifying Drug Delivery System Terhadap Disolusi, Bioavailabilitas, Dan Aktivitas Agen Antihiperlipidemia," Jurnal Ilmiah Farmasi Farmasyifa,vol. 5, no. 1, pp. 101-111, 2022.
M. Nadiah et al., “Preparation and Characterization of Self Nano-Emulsifying Drug Delivery System Loaded with Citraland Its Antiproliferative Effect on Colorectal Cells in Vitro,” Nanomaterials, vol. 9, no. 1028, pp. 1–18, 2019.
S. Prijic and G. Sersa, “Magnetic nanoparticles as targeted delivery systems in oncology,” Radiology and Oncology, vol. 45, no. 1, pp. 1–16, 2018.
I. O. Wulandari, “Pengembangan Metode Sintesis Nanopartikel Fe3O4 melalui Modifikasi Permukaan Berbasis Biokompatibel Molekul sebagai Kandidat Agen Drug Delivery,” pp. 25–26, 2019.
M. R. Ghazanfari, M. Kashefi, S. F. Shams, and M. R. Jaafari, “Perspective of Fe3O4 Nanoparticles Role in Biomedical Applications,” Biochemistry Research International, vol. 2016, 2016.
A. Astuti, I. Khaira, S. Arief, and S. R. A. Usna, “Sintesis dan Karakterisasi Struktur dan Sifat Magnet Nanokomposit Fe3O4@PEG:ZnO,” Indonesian Journal of Applied Physics, vol. 12, no. 2, p. 217, 2022.
Y. P. Yew et al., “Green biosynthesis of superparamagnetic magnetite Fe3O4 nanoparticles and biomedical applications in targeted anticancer drug delivery system: A review,” Arabian Journal of Chemistry, vol. 13, no. 1, pp. 2287–2308, 2020.
J. Sudimack and R. J. Lee, “Targeted drug delivery via the folate receptor,” Advanced Drug Delivery Reviews, vol. 41, no. 2, pp. 147–162, 2018.
L. B. Anigol, V. P. Sajjan, and P. M. Gurubasavaraj, “Evaluation of Antioxidant and Antibacterial Property of Microwave Assisted Green Synthesis of Fe3O4 -MgO Nanocomposites,” IJST, vol. 16, no. 24, pp. 1777–1786, Jun. 2023.
P. Saha, R. Rakshit, and K. Mandal, “Enhanced magnetic properties of Zn doped Fe3O4 nano hollow spheres for better bio-medical applications,” Journal of Magnetism and Magnetic Materials, vol. 475, pp. 130–136, 2019.
P. Hou, H. Kuang, W. Deng, and Y. Lei, “Immobilized copper nanoparticles on biodegradable magnetic starch composite: investigation of its ovarian cancer, cytotoxicity, and antioxidant effects,” Journal of Experimental Nanoscience, vol. 17, no. 1, pp. 496–508, 2022.
Usman, I. A. Fitri, and C. L. Suryani, “Pengaruh Jenis Medium Sumber Zn2+ dan Lama Blanching Terhadap Aktivitas Antioksidan Bubuk Simplisia Sambiloto (Andrographis Paniculata),” Prosiding Seminar Nasional Mini Riset Mahasiswa, vol. 1, no. 2, pp. 54–66, 2022.
W. Setiani, T. Sudiarti, and L. Rahmidar, “Preparation and characterization of edible films from polunlend pati sukun-kitosan,” Valensi, vol. 3, no. 2, pp. 100–109, 2015.
Y. P. Utami, F. Maryam, S. Mus, and N. A. Agustin, “Fraksinasi dan Karakterisasi Senyawa Antioksidan Ekstrak Etanol Daun Andong Merah (Cordyline fruticosa (L.) A. Cheval) Menggunakan Uv-Vis dan FT-IR,” Jurnal Mandala Pharmacon Indonesia, vol. 9, no. 2, pp. 273–281, 2023.
I. Taufik and A. Aziz, “Degradasi Fotokatalitik Senyawa Metilen Biru Dengan Katalis Titania Nanotube,” vol. 48, no. 283, pp. 53–60, 2024.
P. Studi et al., “Formulasi SNEDDS Berbasis Partikel Nano Fe3O4 dengan Ekstrak Jahe ( Zingiber officinale Roscoe ) Sebagai Antioksidan,” pp. 1–10, 2022.
Y. K. Salimi, N. Bialangi, and S. Saiman, “Isolasi dan Identifikasi Senyawa Metabolit Sekunder Ekstrak Metanol Daun Kelor (Moringa oleifera Lamk.),” Akademika : Jurnal Ilmiah Media Publikasi Ilmu Pengetahuan dan Teknologi, vol. 6, no. 2, pp. 132–143, 2017.
G. Gamah, K. Nastiti, and S. Aryzki, “Profil Senyawa Alkaloid Dengan Metode Spektroskopi Inframerah (FTIR) Dan Penetapan Kadar Total Alkaloid Dari Ekstrak Daun Jarak Pagar (Jatropha curcas .L),” Journal Pharmaceutical Care and Sciences, vol. 4, no. 1, pp. 168–181, 2023.
K. JASMINE, "Penambahan Natrium Benzoat Dan Kalium Sorbat (Antiinversi) Dan Kecepatan Pengadukan Sebagai Upaya Penghambatan Reaksi Inversi Pada Nira Tebu", vol. 9, no. 4, pp. 201–209, 2018.
S. Bashir et al., “In-vivo (Albino Mice) and in-vitro Assimilation and Toxicity of Zinc Oxide Nanoparticles in Food Materials,” International Journal of Nanomedicine, vol. 17, no. September, pp. 4073–4085, 2022.
L. Silvia, K. C. Rosyidah, and M. Zainuri, “Pengaruh Ion Doping Zn pada Sifat Kemagnetan Barium M-Heksaferit BaFe12−xZnxO19 berbasis Pasir Besi Tulungagung,” Jurnal Fisika dan Aplikasinya, vol. 9, no. 3, p. 121, 2013.
X. Wang et al., “Adsorption of proteins on oral Zn2+doped iron oxide nanoparticles in mouse stomach and: In vitro: Triggering nanoparticle aggregation,” Nanoscale, vol. 12, no. 44, pp. 22754–22767, 2020.
P. M. Anjana, M. R. Bindhu, M. Umadevi, and R. B. Rakhi, “Antimicrobial, electrochemical and photo catalytic activities of Zn doped Fe3O4 nanoparticles,” Journal of Materials Science: Materials in Electronics, vol. 29, no. 7, pp. 6040–6050, 2018.
V. A. Tiwow, M. J. Rampe, H. L. Rampe, and A. Apita, “Pola Inframerah Arang Tempurung Kelapa Hasil Pemurnian Menggunakan Asam,” Chemistry Progress, vol. 14, no. 2, p. 116, 2021.
M. Sahu et al., “Fabrication of Cu2ZnSnS4 Light Absorber Using a Cost-Effective Mechanochemical Method for Photovoltaic Applications,” Materials, vol. 15, no. 5, pp. 1–16, 2022.
I. O. Wulandari, L. B. Rahayu, I. Riva’i, H. Sulistyarti, and A. Sabarudin, “Sintesis dan Karakterisasi Nanopartikel Fe3O4 termodifikasi Biokompatibel Polimer serta Potensinya sebagai Penghantar Obat,” The Indonesian Green Technology Journal, pp. 1–8, 2021.
A. Manohar, C. Krishnamoorthi, K. C. B. Naidu, and C. Pavithra, “Dielectric, magnetic hyperthermia, and photocatalytic properties of ZnFe2O4 nanoparticles synthesized by solvothermal reflux method,” Applied Physics A: Materials Science and Processing, vol. 125, no. 7, pp. 1–10, 2019.
S. Widodo, N. Yusa, P. Timur Ina, " Pengaruh Waktu Maserasi Terhadap Aktivitas Antioksidan Ekstrak Daun Mundu (Garcinia dulcis (Roxb.) Kurz)," Jurnal Ilmu dan Teknologi Pangan (ITEPA), vol. 10, no. 5, pp. 14, 2021.
License

This work is licensed under a Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License.
Authors who publish with Indonesian Physical Review Journal, agree to the following terms:
- Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution-ShareAlike 4.0 International Licence (CC BY SA-4.0). This license allows authors to use all articles, data sets, graphics, and appendices in data mining applications, search engines, web sites, blogs, and other platforms by providing an appropriate reference. The journal allows the author(s) to hold the copyright without restrictions and will retain publishing rights without restrictions.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgment of its initial publication in Indonesian Physical Review Journal.
- Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work (See The Effect of Open Access).