Green synthesis of nano-copper oxide using Sargassum sp. functionalized in cellulose acetate membrane for dye adsorption

Publish Year: 1403
نوع سند: مقاله ژورنالی
زبان: English
View: 47

This Paper With 18 Page And PDF Format Ready To Download

  • Certificate
  • من نویسنده این مقاله هستم

استخراج به نرم افزارهای پژوهشی:

لینک ثابت به این Paper:

شناسه ملی سند علمی:

JR_GJESM-10-4_026

تاریخ نمایه سازی: 27 مرداد 1403

Abstract:

BACKGROUND AND OBJECTIVES: Nanoparticles are presently employed in a multitude of applications due to their advantageous features, which encompass simplicity, non-toxicity, affordability, lack of pollutants, and environmentally friendly process. Utilization of Sargassum sp extract for producing nano-copper oxide is environmentally friendly. The study demonstrates the synthesis of nano-copper oxide facilitated by the macroalgae Sargassum sp. and its application in functionalizing cellulose acetate membrane to enhance dye adsorption capacity. The objective of the current study is to assess the properties of the green synthesis product of nano-copper oxide by employing Sargassum sp. macroalgae and its functionalized cellulose acetate membrane for the purpose of dye adsorption.METHODS: The preparation of Sargassum sp. extract involved utilizing quantities of ۲.۵, ۵.۰, and ۱۰.۰ grams, which were subsequently combined with a copper sulphate solution to yield nano-copper oxide. Nano-copper oxide was characterized using ultra violet-visual spectroscopy, scanning electron microscope - energy dispersive spectroscopy, x-ray diffraction, and fourier transform infrared techniques. Nano-copper oxide was introduced to bacterial acetate produced from pineapple peel waste to make a composite membrane and observed the antibacterial activity against E.coli and S.aureus, and dye adsorption to Methylene Blue, Malachite Green, Metanil Yellow, and Congo Red for ۶۰ minutes contact time.FINDINGS: Nano-copper oxide is successfully synthesized using macroalgae Sargassum sp. proved by wavelength of ultra violet-visual spectroscopy results at ۳۰۰ nanometer and energy dispersive spectroscopy analysis that denotes the presence of copper at ۰.۹۳ and ۸.۰۴ kilo electron volt. It has been verified that the inclusion of Sargassum sp. has effectively facilitated the production of nano-copper oxide. The findings from X-ray diffraction analysis reveal that the crystallite size of the nano-copper oxide measures approximately ۱۹.۵ nanometers. Adding nano-copper oxide as much as ۲.۰ weight percent into cellulose acetate membrane reduces membrane crystalline index from ۸۸.۶ percent to ۸۵.۷ percent but gives benefit in increasing the anti-bacterial activity against Escherichia coli and Staphylococcus aureus. The adsorption capacity is enhanced for Methylene Blue and Malachite green dyes, whereas it is diminished for Metanil Yellow and Congo Red dyes.CONCLUSION: Sargassum sp. was effectively employed as a reducing agent to synthesize nano-copper oxide, with an optimal concentration of ۵.۰ grams for achieving green synthesis. The copper metal obtained through green synthesis exhibits a spherical morphology and possesses an average crystallite size of approximately ۱۹.۵ nanometers. It has a percentage atomic weight of ۶۰.۶ percent. Introducing nano-copper oxide by ۲.۰ weight percent into bacterial cellulose acetate membrane reduces the crystalline index from ۸۸.۶ percent to ۸۵.۷ percent. The rise in nano-copper oxide content within the cellulose acetate membrane leads to a proportional increase in the membrane's antibacterial properties. Additionally, the adsorption of cationic dye in cellulose acetate composite is enhanced, while the adsorption of anionic dye is diminished.

Authors

U. Yanuhar

Department of Aquatic Resources Management, FPIK, Brawijaya University, Jl. Veteran, Malang, East Java, Indonesia

H. Suryanto

Center of Science and Engineering, LPPM, Universitas Negeri Malang, Malang, East Java, Indonesia

M. Amin

Department of Aquaculture, Faculty of Fisheries, Airlangga University, Surabaya, East Java, Indonesia

J.S. Binoj

Institute of Mechanical Engineering, Saveetha School of Engineering, Saveetha and Institute of Medical and Technical Sciences, Chennai ۶۰۲۱۰۵, Tamilnadu, India

I. Casuarina

Aquaculture Master Program, FPIK, Brawijaya University, Jl. Veteran, Malang, East Java, Indonesia

مراجع و منابع این Paper:

لیست زیر مراجع و منابع استفاده شده در این Paper را نمایش می دهد. این مراجع به صورت کاملا ماشینی و بر اساس هوش مصنوعی استخراج شده اند و لذا ممکن است دارای اشکالاتی باشند که به مرور زمان دقت استخراج این محتوا افزایش می یابد. مراجعی که مقالات مربوط به آنها در سیویلیکا نمایه شده و پیدا شده اند، به خود Paper لینک شده اند :
  • Abboud, Y.; Saffaj, T.; Chagraoui, A.; El Bouari, A.; Brouzi, ...
  • Alhalili, Z., (۲۰۲۲). Green synthesis of copper oxide nanoparticles CuO ...
  • Alsamhary, K.; Al-Enazi, N.M.; Alhomaidi, E.; Alwakeel, S., (۲۰۲۲). Spirulina ...
  • Antiochia, R.; Bollella, P.; Favero, G.; Mazzei, F., (۲۰۱۶). Nanotechnology-based ...
  • Applerot, G.; Lellouche, J.; Lipovsky, A.; Nitzan, Y.; Lubart, R.; ...
  • Araya-Castro, K.; Chao, T.-C.; Durán-Vinet, B.; Cisternas, C.; Ciudad, G.; ...
  • Arun, K.J.; Batra, A.K.; Krishna, A.; Bhat, K.; Aggarwal, M.D.; ...
  • Atmani, H.; Zazouli, S.; Bakkardouch, F.E.; Laallam, L.; Jouaiti, A., ...
  • Balaraman, P.; Balasubramanian, B.; Liu, W.-C.; Kaliannan, D.; Durai, M.; ...
  • Bano, A.; Dawood, A.; Rida; Saira, F.; Malik, A.; Alkholief, ...
  • Berede, H.T.; Andoshe, D.M.; Gultom, N.S.; Kuo, D.-H.; Chen, X.; ...
  • Bhattacharya, P.; Swarnakar, S.; Ghosh, S.; Majumdar, S.; Banerjee, S., ...
  • Burdușel, A.-C.; Gherasim, O.; Grumezescu, A.M.; Mogoantă, L.; Ficai, A.; ...
  • Cazzell, S.A.; Holten-Andersen, N., (۲۰۱۹). Expanding the stoichiometric window for ...
  • Chávez, V.; Uribe-Martínez, A.; Cuevas, E.; Rodríguez-Martínez, R.E.; van Tussenbroek, ...
  • Chugh, D.; Viswamalya, V.S.; Das, B., (۲۰۲۱). Green synthesis of ...
  • Dilamian, M.; Montazer, M.; Masoumi, J., (۲۰۱۳). Antimicrobial electrospun membranes ...
  • Dulta, K.; Ağçeli, K.G.; Chauhan, P.; Jasrotia, R.; Chauhan, P.K.; ...
  • Elango, M.; Deepa, M.; Subramanian, R.; Mohamed Musthafa, A., (۲۰۱۸). ...
  • Essa, W.K., (۲۰۲۴). Methylene blue removal by copper oxide nanoparticles ...
  • Galembeck, F.; Santos, L.P.; Burgo, T.A.L.; Galembeck, A., (۲۰۲۴). The ...
  • Gokarneshan, N.; Velumani, K., (۲۰۱۷). Application of nano silver particles ...
  • Gomes, H.I.O.; Martins, C.S.M.; Prior, J.A.V., (۲۰۲۱). Silver nanoparticles as ...
  • Gvozdenko, A.A.; Siddiqui, S.A.; Blinov, A.V, Golik, A.B.; Nagdalian, A.A.; ...
  • Heredia-Guerrero, J.A.; Benítez, J.J.; Cataldi, P.; Paul, U.C.; Contardi, M.; ...
  • Jayasimha, H.N.; Chandrappa, K.G.; Sanaulla, P.F.; Dileepkumar, V.G., (۲۰۲۴). Green ...
  • Kandil, H.; Moghazy, R.M.; Amin, A., (۲۰۲۳). Enhancing the adsorption ...
  • Kessler, A.; Hedberg, J.; Blomberg, E.; Odnevall, I., (۲۰۲۲). Reactive ...
  • Khan, Y.; Nasar, M.Q, Numan, M., (۲۰۱۸). Biomimetic synthesis of ...
  • Kulkarni, D.; Sherkar, R.; Shirsathe, C.; Sonwane, R.; Varpe, N.; ...
  • Lim, S.; Kim, J.H.; Park, H.; Kwak, C.; Yang, J.; ...
  • López-Miranda, J.L.; Molina, G.A.; Esparza, R.; González-Reyna, M.A.; Silva, R.; ...
  • Mani, V.M.; Kalaivani, S.; Sabarathinam, S.; Vasuki, M.; Soundari, A.J.P.G.; ...
  • Michalak, I.; Tiwari, R.; Dhawan, M.; Alagawany, M.; Farag, M.R.; ...
  • Mori, Y.; Ono, T.; Miyahira, Y.; Nguyen, V.Q.; Matsui, T.; ...
  • Naz, S.; Gul, A.; Zia, M.; Javed, R., (۲۰۲۳). Synthesis, ...
  • Nurjanah, N.; Abdullah, A.; Fachrozan, R.; Hidayat, T., (۲۰۱۸). Characteristics ...
  • Oh, J.E.; Park, N.-M., (۲۰۲۲). Hydrophilic, transparent, and stretchable film ...
  • Onyszko, M.; Markowska-Szczupak, A.; Rakoczy, R.; Paszkiewicz, O.; Janusz, J.; ...
  • Puspita, M.; Setyawidati, N.A.R.; Stiger-Pouvreau, V.; Vandanjon, L.; Widowati, I.; ...
  • Rajeshkumar, S.; Nandhini, N.T.; Manjunath, K.; Sivaperumal, P.; Krishna Prasad, ...
  • Ramakrishnan, K.R.; Padil, V.V.T.; Wacławek, S.; Černík, M.; Varma, R.S., ...
  • Ramesh, P.; Rajendran, A., (۲۰۲۳). Photocatalytic dye degradation activities of ...
  • Ramírez, S.J.F; Morales, E.B.; Velueta, P.D.A.; Grajeda, S.J.M.T., Lemus, A.I.L.; ...
  • Rather, M.Y.; Sundarapandian, S., (۲۰۲۲). Facile green synthesis of copper ...
  • Sarkar, J.; Chakraborty, N.; Chatterjee, A.; Bhattacharjee, A.; Dasgupta, D.; ...
  • Shafiey D.M.; Mohiabadi, M.Z.; (۲۰۱۹). Experimental study of water-based CuO ...
  • Siakavella, I.K.; Lamari, F.; Papoulis, D.; Orkoula, M.; Gkolfi, P.; ...
  • Simbine, E.O.; Rodrigues, L.da C.; Lapa-Guimarães, J.; Kamimura, E.S.; Corassin, ...
  • Singh, D.; Jain, D.; Rajpurohit, D.; Jat, G.; Kushwaha, H.S.; ...
  • Sivakumar, D.; Nouri, J.; Modhini, T.M.; Deepalakshmi, K., (۲۰۱۸). Nickel ...
  • Soleimani, M.; Habibi-Pirkoohi, M., (۲۰۱۷). Biosynthesis of silver nanoparticles using ...
  • Sundar, V.; Balasubramanian, B.; Sivakumar, M.; Chinnaraj, S.; Palani, V.; ...
  • Suryanto, H.; Yanuhar, U.; Fikri, A.A.; Mahasri, G., (۲۰۲۳). Chlorella ...
  • Syukri, D.; Suryanto, H.; Kurniawan, F.; Hari, P.D.; Fiana, R.M.; ...
  • Thiurunavukkarau, R.; Shanmugam, S.; Subramanian, K.; Pandi, P.; Muralitharan, G.; ...
  • Titma, T., (۲۰۱۸). The effect of surface charge and pH ...
  • Tiwari, M.; Narayanan, K.; Thakar, M.B.; Jagani, H.V.; Rao, J.V., ...
  • Tran, H.N.; You, S.-J.; Nguyen, T.V.; Chao, H.-P., (۲۰۱۷). Insight ...
  • Tsilo, P.H.; Basson, A.K.; Ntombela, Z.G.; Dlamini, N.G.; Pullabhotla, R.V.S.R., ...
  • Vaishampayan, A.; Grohmann, E., (۲۰۲۲). Antimicrobials functioning through ros-mediated mechanisms: ...
  • Van Acker, H.; Coenye, T., (۲۰۱۷). The role of reactive ...
  • Varol, T.; Güler, O.; Akçay, S.B.; Çuvalcı, O., (۲۰۲۲). Enhancement ...
  • Yanuhar, U.; Suryanto, H.; Aminnudin, A.; Wijaya, H. W.; Maulana, ...
  • Yasin, A.; Fatima, U.; Shahid, S.; Mansoor, S.; Inam, H.; ...
  • Yin, I.X.; Zhang, J.; Zhao, I.S.; Mei, M.L.; Li, Q.; ...
  • Yunusa, U.; Usman, B.; Ibrahim, B.M., (۲۰۲۱). Cationic dyes removal ...
  • Zeebaree, S.S.Y.; Zeebaree, S.A.Y.; Zebari, H.O.I.; Zebari, S.A.Y., (۲۰۲۱). Sustainable ...
  • نمایش کامل مراجع