NGHIÊN CỨU TỔNG HỢP XANH NANO CuO PHA TẠP Ag, ỨNG DỤNG KHÁNG KHUẨN, KHÁNG NẤM TRÊN CÂY TRÀ HOA VÀNG TẠI XÃ BA CHẼ, TỈNH QUẢNG NINH
Thông tin bài báo
Ngày nhận bài: 11/11/25                Ngày hoàn thiện: 03/02/26                Ngày đăng: 05/02/26Tóm tắt
Từ khóa
Toàn văn:
PDFTài liệu tham khảo
[1] J. Lee, K.-J. Kim, W. S. Sung, J. G. Kim, and D. G. Lee, "The silver nanoparticle (nano-Ag): a new model for antifungal agents," Silver nanoparticles, InTech, 2010, pp. 295-308.
[2] M. A. Manzoor, I. H. Shah, I. A. Sabir, A. Ahmad, G. Albasher, A. A. Dar, M. A. Altaf, and A. Shakoor, "Environmental sustainable: biogenic copper oxide nanoparticles as nano-pesticides for investigating bioactivities against phytopathogens," Environmental Research, vol. 231, 2023, Art. no. 115941.
[3] S. Naz, A. Gul, M. Zia, and R. Javed, "Synthesis, biomedical applications, and toxicity of CuO nanoparticles," Applied Microbiology and Biotechnology, vol. 107, pp. 1039-1061, 2023.
[4] R.A. Ghazi, A.S. Jasim, K. Heydaryan, H. Khojasteh, M. Mohammadalizadeh, S. A. Kadhim, and V. Eskandari, "Biosynthesis of Ag-Doped CuO nanoparticles using heracleum persicum extract for enhanced antibacterial and photocatalytic dye degradation properties," Plasmonics, vol. 20, pp. 471-482, 2025.
[5] A. T. Mosleh, E. A. Kamoun, S. H. El-Moslamy, S. A. Salim, H. Y. Zahran, S. H. Zyoud, and I. S. Yahia, "Performance of Ag-doped CuO nanoparticles for photocatalytic activity applications: Synthesis, characterization, and antimicrobial activity," Discover Nano, vol. 19, 2024, Art. no. 166.
[6] Y. Baste, V. Jadhav, A. Roy, S. Alghamdi, M. Abbas, J. S. Algethami, M. Almehmadi, M. Allahyani, D. Verma, and K. K. Yadav, "Polyol synthesis of Ag-doped copper oxide nanoparticles as a methylene blue-degrading agent," Catalysts, vol. 13, 2023, Art. no. 1143.
[7] S. Vikal, Y. K. Gautam, A. Kumar, A. Kumar, N. Singh, H. Singh, and B. P. Singh, "Effect of silver (Ag) doping on structural, optical and antimicrobial properties of copper oxide (CuO) nanostructures," Nano Express, vol. 4, 2023, Art. no. 025004.
[8] K. K. P. Kumar, N. D. Dinesh, and S. K. Murari, "Synthesis of CuO and Ag doped CuO nanoparticles from Muntingia calabura leaf extract and evaluation of their antimicrobial potential," International Journal of Nano and Biomaterials, vol. 8, pp. 228-252, 2019.
[9] V. H. Rathi, A. R. Jeice, and K. Jayakumar, "Green synthesis of Ag/CuO and Ag/TiO2 nanoparticles for enhanced photocatalytic dye degradation, antibacterial, and antifungal properties," Applied Surface Science Advances, vol. 18, 2023, Art. no. 100476.
[10] C. Sahin, U. Arabaci, D. T. Bulut, and P. O. Yerlikaya, "Synthesis and Characterization of Ag Doped CuO Nanoparticles with Different Sizes and Investigation of Their Anticancer Activity," Journal of Inorganic and Organometallic Polymers and Materials, vol. 35, pp. 1-14, 2025.
[11] D. R. A. Preethi, S. Prabhu, V. Ravikumar, and A. Philominal, "Anticancer activity of pure and silver doped copper oxide nanoparticles against A549 Cell line," Materials Today Communications, vol. 33, 2022, Art. no. 104462.
[12] T. E. Gebremichael, G. G. Muleta, and K. T. Tadele, "Green synthesis of Ag-doped CuO nanocomposites using honey solution for evaluation of their antimicrobial and antioxidant activities," Current Nanomaterials, vol. 10, pp. 333-345, 2025.
[13] S. Ahmed, G. Kaur, P. Sharma, S. Singh, and S. Ikram, "Fruit waste (peel) as bio-reductant to synthesize silver nanoparticles with antimicrobial, antioxidant and cytotoxic activities," Journal of Applied Biomedicine, vol. 16, pp. 221-231, 2018.
[14] B. Laban, U. Ralević, S. Petrović, A. Leskovac, D. Vasić-Anićijević, M. Marković, and V. Vasić, "Green synthesis and characterization of nontoxic L-methionine capped silver and gold nanoparticles," Journal of Inorganic Biochemistry, vol. 204, 2020, Art. no. 110958.
[15] C. Mony, P. Kaur, J. E. Rookes, D. L. Callahan, S. Eswaran, W. Yang, and P. K. Manna, "Nanomaterials for enhancing photosynthesis: interaction with plant photosystems and scope of nanobionics in agriculture," Environmental Science: Nano, vol. 9, pp. 3659-3683, 2022.
[16] P. K. Kumar, B. Rajasekaran, V. V. Kumar, V. Rajagopalan, and P. Karthik, "Effect of silver doping on structural, optical and antifungal properties of copper oxide nanoparticles prepared using Colocasia esculenta leaf extract," Nano-Structures & Nano-Objects, vol. 40, 2024, Art. no. 101385.
[17] D. R. A. Preethi and A. Philominal, "Green synthesis of pure and silver doped copper oxide nanoparticles using moringa oleifera leaf extract," Materials Letters: X, vol. 13, 2022, Art. no. 100122.
[18] M. A. Alnuwaiser, V. S. Betageri, M. I. Khan, and K. Guedri, "Facile synthesis of silver doped-copper oxide nano materials utilizing areca catechu (AC) leaf extract and their antidiabetic and anticancer studies," Journal of the Indian Chemical Society, vol. 99, 2022, Art. no. 100606.
[19] P. Ponnarasi and G. Mahalakshmi, "Ag-doped CuO nanoparticles embedded reduced graphene oxide nanocomposite from Punica granatum peel extract and evaluation of their photocatalytic activity and antimicrobial potential," Chemical Physics Impact, vol. 8, 2024, Art. no. 100632.
[20] B. G. Shawono, K. T. Etefa, G. G. Muleta, Z. Kai, and T. T. Beyene, "Eco-friendly synthesis of ag-doped CuO nanocomposites using Solanum tuberosum peel extract, showcasing enhanced antimicrobial, antioxidant, and photocatalytic performance," Inorganic Chemistry Communications, vol.180, 2025, Art. no. 114993.
[21] S. Muhamad, B. Jamilah, A. Russly, and A. Faridah, "The antibacterial activities and chemical composition of extracts from Carica papaya cv. Sekaki/Hong Kong seed," International Food Research Journal, vol. 24, 2017, Art. no. 810.
[22] X. He, Y. Ma, G. Yi, J. Wu, L. Zhou, and H. Guo, "Chemical composition and antifungal activity of Carica papaya Linn. seed essential oil against Candida spp," Letters in applied microbiology, vol. 64, pp. 350-354, 2017.
[23] M. K. Dwivedi, S. Sonter, S. Mishra, D. K. Patel, and P. K. Singh, "Antioxidant, antibacterial activity, and phytochemical characterization of Carica papaya flowers," Beni-Suef University Journal of Basic and Applied Sciences, vol. 9, 2020, Art. no. 23.
[24] Y. Farida and I. Iswahyuni, "Isolation, Identification and antioxidant activity of chemical compound in ethanol extract of Papaya leaves (Carica papaya L.)," Asian Journal of Pharmaceutical and Clinical Research, vol. 11, pp. 118-121, 2018.
[25] B. Mahesh and S. Satish, "Antimicrobial activity of some important medicinal plant against plant and human pathogens," World journal of agricultural sciences, vol. 4, pp. 839-843, 2008.
[26] D. Nayak, S. Ashe, P. R. Rauta, M. Kumari, and B. Nayak, "Bark extract mediated green synthesis of silver nanoparticles: evaluation of antimicrobial activity and antiproliferative response against osteosarcoma," Materials Science and Engineering: C, vol. 58, pp. 44-52, 2016.
[27] S. Raja, V. Ramesh, and V. Thivaharan, "Green biosynthesis of silver nanoparticles using Calliandra haematocephala leaf extract, their antibacterial activity and hydrogen peroxide sensing capability," Arabian journal of chemistry, vol. 10, pp. 253-261, 2017.
[28] J. S. Kim, E. Kuk, K. N. Yu, J.-H. Kim, S. J. Park, H. J. Lee, S. H. Kim, Y. K. Park, Y. H. Park, and C.-Y. Hwang, "Antimicrobial effects of silver nanoparticles," Nanomedicine: Nanotechnology, Biology and Medicine, vol. 3, pp. 95-101, 2007.
[29] W.-R. Li, X.-B. Xie, Q.-S. Shi, H.-Y. Zeng, Y.-S. Ou-Yang, and Y.-B. Chen, "Antibacterial activity and mechanism of silver nanoparticles on Escherichia coli," Applied Microbiology and Biotechnology, vol. 85, pp. 1115-1122, 2010.
[30] M. Bindhu and M. Umadevi, "Synthesis of monodispersed silver nanoparticles using Hibiscus cannabinus leaf extract and its antimicrobial activity," Spectrochimica acta part A: Molecular and biomolecular spectroscopy, vol. 101, pp. 184-190, 2013.
[31] Z. M. Almutairi and A. Alharbi, "Effect of silver nanoparticles on seed germination of crop plants," J. adv. Agric, vol. 4, pp. 283-288, 2015.
[32] G. A. Guzmán-Báez, L. I. Trejo-Téllez, S. M. Ramírez-Olvera, J. Salinas-Ruíz, J. J. Bello-Bello, G. Alcántar-González, J. V. Hidalgo-Contreras, and F. C. Gómez-Merino, "Silver nanoparticles increase nitrogen, phosphorus, and potassium concentrations in leaves and stimulate root length and number of roots in tomato seedlings in a hormetic manner," Dose-Response, vol. 19, 2021, Art. no. 15593258211044576.
DOI: https://doi.org/10.34238/tnu-jst.13984
Các bài báo tham chiếu
- Hiện tại không có bài báo tham chiếu





