An overview of the phytosynthesis of various metal nanoparticles

被引:0
作者
Sekhar Tiwari
Sachin Kumar Verma
Pratima Bhagat
Smriti Yadav
Rajesh Sharma
Gajendra Kumar Aseri
Jagdip Singh Sohal
Deepansh Sharma
Umesh Kumar Dwivedi
Ranjan Singh
Deepti Singh
Neeraj Khare
机构
[1] P P Savani University,Amity Institute of Microbial Technology
[2] Amity University Rajasthan,Amity School of Communication
[3] Amity University Rajasthan,Amity School of Applied Sciences
[4] Amity University Rajasthan,Department of Microbiology
[5] Dr. Rammanohar Lohia Avadh University,undefined
来源
3 Biotech | 2021年 / 11卷
关键词
Phytosynthesis; Silver nanoparticles; Gold nanoparticles; Zinc nanoparticles; Magnesium nanoparticles; Titanium nanoparticles; Copper nanoparticles;
D O I
暂无
中图分类号
学科分类号
摘要
Nanotechnology is an emerging branch of science wherein various valuable molecules with altered properties can be synthesized and utilized for numerous technological applications. Nowadays, nanotechnology is the preferred tool for the agriculture, food, and medicine industries. However, consistent accumulation of toxic by-products during the synthesis of nanoparticles from the established physical and chemical methods imposes an unprecedented danger to the environment and human well-being. The biological route for the synthesis of nanoparticles offers a potential option over the conventional chemical synthesis process due to the involvement of non-toxic and environmentally friendly materials, such as plants, fungi, bacteria, etc. Phytosynthesis, a type of biological synthesis, utilizes various combinations of secondary metabolites from different plant parts (whole plant, leaves, fruit peel, root, bark, seeds, and stem) for non-toxic and environmentally friendly nanoparticles fabrication. Non-toxic and environmentally friendly secondary metabolites derived from plants are the sources of reducing and capping agents during the biosynthesis of nanoparticles which proceeds in a controlled manner with desired characteristics. Phytosynthesis of nanoparticles is also a simple, economic, durable, and reproducible process. The present article is a comprehensive depiction of the synthesis of different metal nanoparticles from diverse plant species.
引用
收藏
相关论文
共 50 条
[41]   Facile approach for phytosynthesis of gold nanoparticles from Corallocarbus epigaeus rhizome extract and their biological assessment [J].
Kandasamy, Selvam ;
Chinnappan, Sudhakar ;
Thangaswamy, Selvankumar ;
Balakrishnan, Senthilkumar .
MATERIALS RESEARCH EXPRESS, 2019, 6 (12)
[42]   Phytosynthesis of Silver Nanoparticles: Characterization, Biocompatibility Studies, and Anticancer Activity [J].
Jadhav, Kiran ;
Deore, Sharada ;
Dhamecha, Dinesh ;
Rajeshwari, H. R. ;
Jagwani, Satveer ;
Jalalpure, Sunil ;
Bohara, Raghvendra .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2018, 4 (03) :892-899
[43]   Topical delivery of growth factors and metal/metal oxide nanoparticles to infected wounds by polymeric nanoparticles: an overview [J].
Alavi, Mehran ;
Rai, Mahendra .
EXPERT REVIEW OF ANTI-INFECTIVE THERAPY, 2020, 18 (10) :1021-1031
[44]   Synthesis and Characterization of Silver Nanoparticles by Phytosynthesis Method and Their Biological Activity [J].
Shafaghat, Ali .
SYNTHESIS AND REACTIVITY IN INORGANIC METAL-ORGANIC AND NANO-METAL CHEMISTRY, 2015, 45 (03) :381-387
[45]   Advancements in metal and metal oxide nanoparticles for targeted cancer therapy and imaging: Mechanisms, applications, and safety concerns [J].
Sidhic, Jameema ;
Aswathi, M. K. ;
Prasad, Aparna ;
Tom, Alby ;
Mohan, Pooja ;
Sarbadhikary, Paromita ;
Narayanankutty, Arunaksharan ;
George, Satheesh ;
Abrahamse, Heidi ;
George, Blassan P. .
JOURNAL OF DRUG DELIVERY SCIENCE AND TECHNOLOGY, 2025, 105
[46]   An overview of the plant-mediated green synthesis of noble metal nanoparticles for antibacterial applications [J].
Behzad, Farahnaz ;
Naghib, Seyed Morteza ;
Kouhbanani, Mohammad Amin Jadidi ;
Tabatabaei, Seyede Nafise ;
Zare, Yasser ;
Rhee, Kyong Yop .
JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2021, 94 :92-104
[47]   Phytosynthesis of silver nanoparticles by Cissus quadrangularis: influence of physicochemical factors [J].
Vanaja M. ;
Gnanajobitha G. ;
Paulkumar K. ;
Rajeshkumar S. ;
Malarkodi C. ;
Annadurai G. .
Journal of Nanostructure in Chemistry, 2013, 3 (1)
[48]   Phytosynthesis of silver nanoparticles using the leaves extract of Ficus talboti king and evaluation of antioxidant and antibacterial activities [J].
K. Arunachalam ;
B. Shanmuganathan ;
P. S. Sreeja ;
T. Parimelazhagan .
Environmental Science and Pollution Research, 2015, 22 :18066-18075
[49]   Green synthesis of metal and metal oxide nanoparticles via plant extracts: an overview [J].
Ishak, N. A. I. ;
Kamarudin, S. K. ;
Timmiati, S. N. .
MATERIALS RESEARCH EXPRESS, 2019, 6 (11)
[50]   Phytosynthesis, Kinetics and Antioxidant Activity of Waltham Butternut Squash Aqueous Extracts and Metallic Nanoparticles Thereof [J].
Sorescu, Ana-Alexandra ;
Nuta, Alexandrina ;
Ion, Rodica-Mariana ;
Radu, George Ionut ;
Nistor, Cristina Lavinia .
13TH INTERNATIONAL CONFERENCE INTERDISCIPLINARITY IN ENGINEERING (INTER-ENG 2019), 2020, 46 :644-651