1 |
Multifarious global flora fabricated phytosynthesis of silver nanoparticles: a green nanoweapon for antiviral approach including SARS-CoV-2 |
|
|
| C. Karthik, K. A. Punnaivalavan, S. Pandi Prabha, D. G. Caroline |
|
| International Nano Letters. 2022; |
|
| [Pubmed] [Google Scholar] [DOI] |
|
2 |
Green Nanotechnology From Plant Extracts Synthesis And Characterization Of Gold Nanoparticles |
|
|
| Yadav Rakesh Kumar, Badu Archana, sharma Abhishek, Bhatt Khushboo |
|
| Materials and its Characterization. 2022; 1(1): 56 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
3 |
Bionanofactories for Green Synthesis of Silver Nanoparticles: Toward Antimicrobial Applications |
|
|
| Ashvi Sanjay Jain, Pranita Subhash Pawar, Aira Sarkar, Vijayabhaskarreddy Junnuthula, Sathish Dyawanapelly |
|
| International Journal of Molecular Sciences. 2021; 22(21): 11993 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
4 |
Nanostructured LiFe5O8 by a Biogenic Method for Applications from Electronics to Medicine |
|
|
| Silvia Soreto Teixeira, Manuel P. F. Graça, José Lucas, Manuel Almeida Valente, Paula I. P. Soares, Maria Carmo Lança, Tânia Vieira, Jorge Carvalho Silva, João Paulo Borges, Luiza-Izabela Jinga, Gabriel Socol, Cristiane Mello Salgueiro, José Nunes, Luís C. Costa |
|
| Nanomaterials. 2021; 11(1): 193 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
5 |
Green Silver Nanoparticles: Recent Trends and Technological Developments |
|
|
| Preeti Rajoriya, Mayara C. S. Barcelos, Danielle C. M. Ferreira, Pragati Misra, Gustavo Molina, Franciele M. Pelissari, Pradeep K. Shukla, Pramod W. Ramteke |
|
| Journal of Polymers and the Environment. 2021; 29(9): 2711 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
6 |
Biocompatible CuInS2 Nanoparticles as Potential Antimicrobial, Antioxidant, and Cytotoxic Agents |
|
|
| Ranjan Kr. Giri, Sunil Chaki, Ankurkumar J. Khimani, Yati H. Vaidya, Parth Thakor, Anjali B. Thakkar, Swati J. Pandya, Milind P. Deshpande |
|
| ACS Omega. 2021; 6(40): 26533 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
7 |
Recent advances in anticancer and antimicrobial activity of silver nanoparticles synthesized using phytochemicals and organic polymers |
|
|
| Irshad A Wani, Tokeer Ahmad, Ajit Khosla |
|
| Nanotechnology. 2021; 32(46): 462001 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
8 |
Facile coconut inflorescence sap mediated synthesis of silver nanoparticles and its diverse antimicrobial and cytotoxic properties |
|
|
| Rajesh M.K., Muralikrishna K.S., Swapna S. Nair, Kumar B. Krishna, Subrahmanya T.M., Sonu K.P., Subaharan K., Sweta H., Prasad T.S. Keshava, Chandran Neeli, Indrani Karunasagar, Hebbar K.B., Anitha Karun |
|
| Materials Science and Engineering: C. 2020; 111: 110834 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
9 |
Phytogenic Nanoparticles to Combat Multi Drug Resistant Pathogens and Photocatalytic Degradation of Dyes |
|
|
| Syed Baker, Olga V. Perianova, Svetlana V. Prudnikova, Andrey Kuzmin, Nadezhda K. Potkina, Olga Y. Khohlova, Tatiana I. Lobova |
|
| BioNanoScience. 2020; 10(2): 486 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
10 |
A review on phytosynthesis, affecting factors and characterization techniques of silver nanoparticles designed by green approach |
|
|
| Anu Bala, Gita Rani |
|
| International Nano Letters. 2020; 10(3): 159 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
11 |
MWCNTs-ZrO
2
as a reusable heterogeneous catalyst for the synthesis of
N
-heterocyclic scaffolds under green reaction medium
|
|
|
| Bipasa Halder, Flora Banerjee, Ahindra Nag |
|
| Applied Organometallic Chemistry. 2020; 34(11) |
|
| [Pubmed] [Google Scholar] [DOI] |
|
12 |
Cocos nucifera Leaf Extract Mediated Green Synthesis of Silver Nanoparticles for Enhanced Antibacterial Activity |
|
|
| A. K. M. Royhan Uddin, Md. Abu Bakar Siddique, Farjana Rahman, A. K. M. Atique Ullah, Rahat Khan |
|
| Journal of Inorganic and Organometallic Polymers and Materials. 2020; 30(9): 3305 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
13 |
Role of Green Silver Nanoparticles in the Inhibition of Listeria monocytogenes and Escherichia coli |
|
|
| Anvesha Sinha, Jayanand Manjhi |
|
| Nanoscience & Nanotechnology-Asia. 2020; 10(1): 39 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
14 |
Anaerobic Acidification of Coconut Water Waste by Lactobacillus acidophilus Culture for Biotechnological Production of Lactic Acid |
|
|
| Darwin Darwin, Ulfa Triovanta, Ridho Rinaldi, Atmadian Pratama |
|
| Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis. 2019; 67(6): 1433 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
15 |
Biogenic nanoparticles: Synthesis, stability and biocompatibility mediated by proteins of Pseudomonas aeruginosa |
|
|
| Melisa A. Quinteros, José O. Bonilla, Silvana V. Alborés, Liliana B. Villegas, Paulina L. Páez |
|
| Colloids and Surfaces B: Biointerfaces. 2019; 184: 110517 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
16 |
A systematic review on silver nanoparticles-induced cytotoxicity: Physicochemical properties and perspectives |
|
|
| Mahmuda Akter,Md. Tajuddin Sikder,Md. Mostafizur Rahman,A.K.M. Atique Ullah,Kaniz Fatima Binte Hossain,Subrata Banik,Toshiyuki Hosokawa,Takeshi Saito,Masaaki Kurasaki |
|
| Journal of Advanced Research. 2017; |
|
| [Pubmed] [Google Scholar] [DOI] |
|
17 |
Sunlight mediated rapid synthesis of small size range silver nanoparticles using Zingiber officinale rhizome extract and its antibacterial activity analysis |
|
|
| Shiji Mathew,Anagha Prakash,E.K Radhakrishnan |
|
| Inorganic and Nano-Metal Chemistry. 2017; : 00 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
18 |
Enhanced Antibacterial and Cytotoxic Activity of Phytochemical Loaded-Silver Nanoparticles Using Curculigo orchioides Leaf Extracts with Different Extraction Techniques |
|
|
| Perumal Venkatachalam,Thamilchelvan Kayalvizhi,Jinu Udayabanu,Giovanni Benelli,Natesan Geetha |
|
| Journal of Cluster Science. 2017; |
|
| [Pubmed] [Google Scholar] [DOI] |
|
19 |
Mechanism of plant-mediated synthesis of silver nanoparticles – A review on biomolecules involved, characterisation and antibacterial activity |
|
|
| S. Rajeshkumar,L.V. Bharath |
|
| Chemico-Biological Interactions. 2017; 273: 219 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
20 |
Melt rheological studies of polypropylene filled with coconut water treated and untreated fly ash |
|
|
| S. Radhakrishnan,M. B. Kulkarni,Nikesh Samarth,P. A. Mahanwar |
|
| Journal of Applied Polymer Science. 2016; |
|
| [Pubmed] [Google Scholar] [DOI] |
|
21 |
KinneretiaTHG-SQI4 mediated biosynthesis of silver nanoparticles and its antimicrobial efficacy |
|
|
| Hina Singh,Juan Du,Tae-Hoo Yi |
|
| Artificial Cells, Nanomedicine, and Biotechnology. 2016; : 1 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
22 |
Green Nanotechnology from Plant Extracts: Synthesis and Characterization of Gold Nanoparticles |
|
|
| Adriana Napoleão Geraldes,Andressa Alves da Silva,Jessica Leal,Gethzemani Mayeli Estrada-Villegas,Nilton Lincopan,Kattesh V. Katti,Ademar Benévolo Lugão |
|
| Advances in Nanoparticles. 2016; 05(03): 176 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
23 |
Green Synthesis of Silver Nanoparticles: A Review |
|
|
| Sista Kameswara Srikar,Deen Dayal Giri,Dan Bahadur Pal,Pradeep Kumar Mishra,Siddh Nath Upadhyay |
|
| Green and Sustainable Chemistry. 2016; 06(01): 34 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
24 |
Weissella oryzaeDC6-facilitated green synthesis of silver nanoparticles and their antimicrobial potential |
|
|
| Priyanka Singh,Yeon J. Kim,Chao Wang,Ramya Mathiyalagan,Deok C. Yang |
|
| Artificial Cells, Nanomedicine, and Biotechnology. 2015; : 1 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
25 |
Synthesis and characterization of nanosilver with antibacterial properties using Pinus densiflora young cone extract |
|
|
| Palanivel Velmurugan,Jung-Hee Park,Sang-Myeong Lee,Jum-Suk Jang,Kui-Jae Lee,Sang-Sub Han,Sang-Hyun Lee,Min Cho,Byung-Taek Oh |
|
| Journal of Photochemistry and Photobiology B: Biology. 2015; 147: 63 |
|
| [Pubmed] [Google Scholar] [DOI] |
|
26 |
Conductive silver inks and their applications in printed and flexible electronics |
|
|
| Venkata Krishna Rao R.,Venkata Abhinav K.,Karthik P. S.,Surya Prakash Singh |
|
| RSC Adv.. 2015; 5(95): 77760 |
|
| [Pubmed] [Google Scholar] [DOI] |
|