Zobrazeno 1 - 10
of 1 188
pro vyhledávání: '"Ag-doped"'
Publikováno v:
Green Chemistry Letters and Reviews, Vol 17, Iss 1 (2024)
In this study, a facile, green, and eco-friendly approach was followed for the synthesis of zinc oxide (ZnO), Ag-doped ZnO nanoparticles (NPs) using Ruta chalepensis leaf extract. The biosynthesized nanoparticles were characterized by X-ray diffracti
Externí odkaz:
https://doaj.org/article/42c346b6eec442de8c1d73fcd6662b6d
Publikováno v:
Heliyon, Vol 10, Iss 15, Pp e35725- (2024)
The development of nanotechnology has significantly impacted the improvement of photocatalytic performance of ZnO NPs. In this study synthesis of pure ZnO and Ag–ZnO nanoparticles via a co-precipitation method at varying Ag concentrations (1 %, 2 %
Externí odkaz:
https://doaj.org/article/befa1f8cf4a244f7a669746f84755f26
Publikováno v:
Next Materials, Vol 4, Iss , Pp 100207- (2024)
The use of nanoparticles has attracted widespread attention in surface science to improve the characteristics of substrates such as thermal stability, corrosion resistance, self-cleaning, and antibacterial effects. Nonetheless, porous materials like
Externí odkaz:
https://doaj.org/article/f62f445fee55478ba396c4ee0b65fac2
Autor:
Dea Agnestasya Kurnia Ramadhani, Nabella Sholeha, Nanda Nafi'atul Khusna, Markus Diantoro, Arif Nur Afandi, Zurina Osman, Herlin Pujiarti
Publikováno v:
Materials Science for Energy Technologies, Vol 7, Iss , Pp 274-281 (2024)
Titanium dioxide (TiO2) nanoparticles are commonly used as photoanode materials in dye-sensitized solar cells (DSSC). The structure of TiO2 can be modified by doping to enhance its optical and electrical performance. The modification carried out in t
Externí odkaz:
https://doaj.org/article/80834861fb6742a4a064a9b775780db0
Autor:
P. Ponnarasi, G. Mahalakshmi
Publikováno v:
Chemical Physics Impact, Vol 8, Iss , Pp 100632- (2024)
The present study explored Punica granatum peel extract as a reducing and capping agent for synthesis of Ag-doped CuO nanoparticles embedded reduced graphene oxide (rGO) nanocomposite. The crystalline nature of the Ag doped CuO/rGO was identified uti
Externí odkaz:
https://doaj.org/article/363340105e6a432a84578adfc1316af8
Autor:
Tasnuva Zahan Liza, Md Mahamud Hasan Tusher, Foysal Anwar, Maria Ferdous Monika, Kazi Faiza Amin, F.N.U. Asrafuzzaman
Publikováno v:
Results in Materials, Vol 22, Iss , Pp 100559- (2024)
The production of nanoparticles using biogenic synthesis techniques is becoming more prominent due to its diverse applications. In this research, the extract from mango leaf was utilized to fabricate a green method for producing Ag-doped and undoped
Externí odkaz:
https://doaj.org/article/a91e1b75a1b44f0b9172cc7476a93bac
Akademický článek
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Publikováno v:
Micro, Vol 3, Iss 3, Pp 643-652 (2023)
Azo dyes such as Tropaeolin O have diverse applications in the textile, food, and biomedical industries. However, their recalcitrant properties make them toxic substances in surface waters. Nanocatalysts are photoactive nanoparticles that generate re
Externí odkaz:
https://doaj.org/article/33a9e579a4d445f28dfa269222f9fb40
Autor:
Zhiquan Yang, Shan He, Wanhui Liu, Baosheng Zou, Wenning Liao, Yin Wang, Caiyun Wang, Shuai Li, Xiaojun Niu
Publikováno v:
Water Science and Technology, Vol 88, Iss 1, Pp 62-74 (2023)
Efficient degradation of uranium(VI) (U(VI)) in wastewater is an urgent problem because of the chemical toxicity and radiotoxicity. In this study, the Agx–SnS2 photocatalysts were compounded by a simple hydrothermal method, effectively removing U(V
Externí odkaz:
https://doaj.org/article/16f781cdade4436b9019b25645cd463c
Autor:
Yuhong Lin, Zhuoyuan Chen, Chang Feng, Li Ma, Jiangping Jing, Jian Hou, Likun Xu, Mingxian Sun, Dongchu Chen
Publikováno v:
Molecules, Vol 29, Iss 9, p 1931 (2024)
In this study, S-doped graphitic carbon nitride (S-C3N4) was prepared using the high-temperature polymerization method, and then S-C3N4/AgCdS heterojunction photocatalyst was obtained using the chemical deposition method through loading Ag-doped CdS
Externí odkaz:
https://doaj.org/article/46aee2147c0642c4a5d55b38f01fe57e