SYNTHESIS AND CHARACTERIZATION OF SnO2/ZnO COMPOSITE USING JAPANESE PAPAYA LEAF EXTRACT (Cnidoscolus aconitifolius) WITH HYDROTHERMAL METHOD
DOI:
https://doi.org/10.20414/spin.v6i2.10997Keywords:
Composite SnO2/ZnO, Extract, Hydrothermal, Japanese papaya leaf (Cnidoscolus aconitifolius)Abstract
SnO2/ZnO composites were synthesized using the hydrothermal method using Japanese papaya (Cnidoscolus aconitifolius) leaf extract. This study aims to determine the effect of using Japanese papaya leaf extract (Cnidoscolus aconitifolius) on the formation of crystallinity and morphology in synthesizing SnO2/ZnO composites. Synthesis was carried out with variations in mass of 5, 10, and 15 grams using the hydrothermal method for 12 hours at 160°C. The results of X-Ray Diffraction (XRD) characterization show that wide diffractogram peaks are identified as the peaks of the SnO2 compound with a tetragonal structure and sharp peaks are identified as the peaks of the ZnO compound. The Fourier Transform Infrared (FTIR) characterization shows the peak wave number of 665 cm-1 which is the Sn-O-Sn strain and the peaks at wave numbers 598 cm-1 and 501 cm-1 which are the Zn-O strain. Characterization of Scanning Electron Microscopy (SEM) in the synthesis of SnO2/ZnO composites after adding Japanese papaya (Cnidoscolus aconitifolius) leaf extract had relatively reduced particle size and aggregate formation compared to no extract. The best effective mass of Japanese papaya leaf extract (Cnidoscolus aconitifolius) is the mass variation of 15 grams with 28.49 nm crystals.
Downloads
References
Amanta, R. C. (2022). Sintesis dan Karakterisasi SnO2 Menggunakan Ekstrak Daun Pepaya Jepang (Cnidoscolus aconitifolius) sebagai Capping Agent dengan Metode Hidrotermal. Skripsi, 25–29.
Angasa, E., Asdim, Zulhadjri, Jamarun, N., & Arief, S. (2020). The effect of Impatiens balsamina L. extract on structural, morphological, optical, and photocatalytic properties of Zn2SnO4. Journal of Materials Research and Technology, 9(6), 12917–12925.
Arrafiqie, M. F., Azis, Y., & Zultiniar. (2016). Sintesis Hidroksiapatit dari Limbah Kulit Kerang Lokan (Geloina expansa) Dengan Metode Hidrot Handbook ermal. Revista CENIC. Ciencias Biológicas, 1(3), 1–28.
Byrappa, K., & Yoshimura, M. (1992). Handbook Of Hydrothermal Technology A Technology for Crystal Growth and Materials Processing. In Journal of Esthetic and Restorative Dentistry (Vol. 4, Issue 6, pp. 199–201).
Dony, N., Azis, H., & Syukri. (2013). Studi Fotodegradasi Biru Metilen Di Bawah Sinar Matahari Oleh ZnO-SnO 2 Yang Dibuat Dengan Metoda Solid State Reaction. Prosiding Semirata FMIPA Universitas Lampung, 297–303.
Fabiyi, O. A. (2021). Sustainable management of Meloidogyne incognita infecting carrot (Daucus carota): Green synthesis of silver nanoparticles with Cnidoscolus aconitifolius. Vegetos, 34(2), 277–285.
Ghaderi, A., Abbasi, S., & Farahbod, F. (2015). Synthesis of SnO2 and ZnO Nanoparticles and SnO2-ZnO Hybrid for the Photocatalytic Oxidation of Methyl Orange. Iranian Journal of Chemical Engineering, 12(3), 96–105.
Golmohammadi, M., Hassankiadeh, M. N., & Zhang, L. (2021). Facile biosynthesis of SnO2/ZnO nanocomposite using Acroptilon repens flower extract and evaluation of their photocatalytic activity. Ceramics International, 47(20), 29303–29308.
Hemmati, S., Anaraki Firooz, A., Khodadadi, A. A., & Mortazavi, Y. (2011). Nanostructured SnO2-ZnO sensors: Highly sensitive and selective to ethanol. Sensors and Actuators, B: Chemical, 160(1), 1298–1303.
Honarmand, M., Mirzadeh, M., & Honarmand, M. (2020). Green synthesis of SnO2-ZnO-eggshell nanocomposites and study of their application in removal of mercury (II) ions from aqueous solution. Journal of Environmental Health Science and Engineering, 18(2), 1581–1593.
Jiao, Y. U. E., Wan, C., Li, J., & Li, J. (2016). Hydrothermal Synthesis Of SnO2-ZnO Aggregates in Cellulosa Aerogels For Photocatalytic Degradation of Rhodamine B. Experimental, 1(1), 2–6.
Kurniawan, D. S., Tarkono, & Supriadi, H. (2013). Utilization Of Fiber And Shell Particles Palm Oil As Substitute Materials In Producing Eternite Ceiling. Jurnal Fema, 1(3), 41–51.
Mihaiu, S., Toader, A., Atkinson, I., Mocioiu, O. C., Hornoiu, C., Teodorescu, V. S., & Zaharescu, M. (2015). Advanced ceramics in the SnO2-ZnO binary system. Ceramics International, 41(3), 4936–4945.
Minah, F. N., Astuti, S., & Rastini, E. K. (2017). Karakterisasi Material Komposit Polimer Polistyrene Dan Serat Tebu. Industri Inovatif, 7(1), 1–6.
Okpara, F. N., & Akwukwaegbu, P. I. (2020). Effect of Aqueous Leaf Extract of Cnidoscolus Aconitifolius on Lipid Profile and Haematology of Carbon Tetrachloride Treated Rats. Acta Chemica Iasi, 28(2), 237–256.
Oroh, J., Sappu, F. P., & Lumintang, R. (1985). Analisis Sifat Mekanik Material Komposit dari Serat Sabut Kelapa. The Musical Times, 2(1), 1–10.
Ortiz-Landeros, J., Gómez-Yáñez, C., López-Juárez, R., Dávalos-Velasco, I., & Pfeiffer, H. (2012). Synthesis of advanced ceramics by hydrothermal crystallization and modified related methods. Journal of Advanced Ceramics, 1(3), 204–220.
Prabakaran, S., Nisha, K. D., Harish, S., Archana, J., Navaneethan, M., Ponnusamy, S., Muthamizhchelvan, C., Ikeda, H., & Hayakawa, Y. (2019). Synergistic effect and enhanced electrical properties of TiO2/SnO2/ZnO nanostructures as electron extraction layer for solar cell application. Applied Surface Science, 498(8), 1–33.
Sanjaya, H., Rida, P., & Nigsih, S. K. W. (2017). Degradasi Methylene Blue Menggunakan Katalis ZnO-PEG dengan Metode Fotosonolisis. EKSAKTA: Berkala Ilmiah Bidang MIPA, 18(02), 21–29.
Singh, K., Malakar, R., Narzary, R., Kakoty, P., & Mondal, B. (2018). Hydrogen Sensing Properties of Pure and Composites of ZnO and SnO 2 Particles: Understanding Sensing Mechanism . Sensor Letters, 15(9), 771–778.
Somade, O. T., Ugbaja, R. N., Idowu, M. A., & Akinloye, O. A. (2021). Cnidoscolus aconitifolius leaf extract and ascorbate confer amelioration and protection against dimethyl nitrosamine-induced renal toxicity and testicular abnormalities in rats. Toxicology Reports, 8(4), 1098–1108.
Sudhaparimala, S., & Vaishnavi, M. (2016). Biological synthesis of nano composite SnO2- ZnO - Screening for efficient photocatalytic degradation and antimicrobial activity. Materials Today: Proceedings, 3(6), 2373–2380.
Suthakaran, S., Dhanapandian, S., Krishnakumar, N., & Ponpandian, N. (2019). Surfactants assisted SnO2 nanoparticles synthesized by a hydrothermal approach and potential applications in water purification and energy conversion. Journal of Materials Science: Materials in Electronics, 30(14), 13174–13190.
Viet, P. Van, Thi, C. M., & Hieu, L. Van. (2016). The High Photocatalytic Activity of SnO2 Nanoparticles Synthesized by Hydrothermal Method. Journal of Nanomaterials, 8(2), 41–57.
Wang, S., Yang, Z., Lu, M., Zhou, Y., Zhou, G., Qiu, Z., Wang, S., Zhang, H., & Zhang, A. (2007). Coprecipitation synthesis of hollow Zn2SnO4 spheres. Materials Letters, 61(14–15), 3005–3008.
Wulandari, D. D. (2017). Analisa Kesadahan Total Dan Kadar Klorida Air Di Kecamatan Tanggulangin Sidoarjo. Medical Technology and Public Health Journal, 1(1), 14–19.
Yu, Y., Yao, B., Cao, B., & Ma, W. (2019). Morphology-controlled Fabrication of SnO2/ZnO Nanocomposites with Enhanced Photocatalytic Performance. Photochemistry and Photobiology, 95(5), 1131–1141.
Zhu, L., Hong, M., & Ho, G. W. (2015). Hierarchical Assembly of SnO2/ZnO Nanostructures for Enhanced Photocatalytic Performance. Scientific Reports, 5, 1–11.
Downloads
Published
Issue
Section
License
Copyright (c) 2024 SPIN JURNAL KIMIA & PENDIDIKAN KIMIA

This work is licensed under a Creative Commons Attribution 4.0 International License.




