Magnetic Iron Oxide Nanoparticle (IONP) Synthesis to Applications: Present and Future

被引:229
作者
Ajinkya, Nene [1 ]
Yu, Xuefeng [1 ]
Kaithal, Poonam [2 ]
Luo, Hongrong [1 ]
Somani, Prakash [3 ]
Ramakrishna, Seeram [4 ]
机构
[1] Chinese Acad Sci, Shenzhen Inst Adv Technol, Mat & Interfaces Ctr, Shenzhen 518055, Peoples R China
[2] SHUATS, Jacob Inst Biotechnol & Bioengn, Dept Mol & Cellular Engn, Allahabad 211007, Uttar Pradesh, India
[3] Appl Sci Innovat Pvt Ltd, Ctr Grand Challenges & Green Technol, Pune 411041, Maharashtra, India
[4] Natl Univ Singapore, Ctr Nanofibers & Nanotechnol, Singapore 117576, Singapore
关键词
iron oxide nanoparticles (IONPs); formation mechanisms; reproducible; biomedical; TARGETED DRUG-DELIVERY; FE3O4; NANOPARTICLES; WUSTITE NANOPARTICLES; SURFACE FUNCTIONALIZATION; RAMAN-SPECTROSCOPY; CANCER-THERAPY; IN-VIVO; MAGHEMITE; TOXICITY; CELLS;
D O I
10.3390/ma13204644
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Iron oxides are chemical compounds which have different polymorphic forms, including gamma-Fe2O3 (maghemite), Fe3O4 (magnetite), and FeO (wustite). Among them, the most studied are gamma-Fe2O3 and Fe3O4, as they possess extraordinary properties at the nanoscale (such as super paramagnetism, high specific surface area, biocompatible etc.), because at this size scale, the quantum effects affect matter behavior and optical, electrical and magnetic properties. Therefore, in the nanoscale, these materials become ideal for surface functionalization and modification in various applications such as separation techniques, magnetic sorting (cells and other biomolecules etc.), drug delivery, cancer hyperthermia, sensing etc., and also for increased surface area-to-volume ratio, which allows for excellent dispersibility in the solution form. The current methods used are partially and passively mixed reactants, and, thus, every reaction has a different proportion of all factors which causes further difficulties in reproducibility. Direct active and complete mixing and automated approaches could be solutions to this size- and shape-controlled synthesis, playing a key role in its exploitation for scientific or technological purposes. An ideal synthesis method should be able to allow reliable adjustment of parameters and control over the following: fluctuation in temperature; pH, stirring rate; particle distribution; size control; concentration; and control over nanoparticle shape and composition i.e., crystallinity, purity, and rapid screening. Iron oxide nanoparticle (IONP)-based available clinical applications are RNA/DNA extraction and detection of infectious bacteria and viruses. Such technologies are important at POC (point of care) diagnosis. IONPs can play a key role in these perspectives. Although there are various methods for synthesis of IONPs, one of the most crucial goals is to control size and properties with high reproducibility to accomplish successful applications. Using multiple characterization techniques to identify and confirm the oxide phase of iron can provide better characterization capability. It is very important to understand the in-depth IONP formation mechanism, enabling better control over parameters and overall reaction and, by extension, properties of IONPs. This work provides an in-depth overview of different properties, synthesis methods, and mechanisms of iron oxide nanoparticles (IONPs) formation, and the diverse range of their applications. Different characterization factors and strategies to confirm phase purity in the IONP synthesis field are reviewed. First, properties of IONPs and various synthesis routes with their merits and demerits are described. We also describe different synthesis strategies and formation mechanisms for IONPs such as for: wustite (FeO), hematite (alpha-Fe2O3), maghemite (gamma-Fe2O3) and magnetite (Fe3O4). We also describe characterization of these nanoparticles and various applications in detail. In conclusion, we present a detailed overview on the properties, size-controlled synthesis, formation mechanisms and applications of IONPs.
引用
收藏
页码:1 / 35
页数:35
相关论文
共 202 条
[1]   Radiolytic Formation of Fe3O4 Nanoparticles: Influence of Radiation Dose on Structure and Magnetic Properties [J].
Abedini, Alam ;
Daud, Abdul Razak ;
Hamid, Muhammad Azmi Abdul ;
Othman, Norinsan Kamil .
PLOS ONE, 2014, 9 (03)
[2]   Recent Advances in Iron Oxide Nanoparticles (IONPs): Synthesis and Surface Modification for Biomedical Applications [J].
Abu Noqta, Osama ;
Aziz, Azlan Abdul ;
Usman, Ibrahim Adamu ;
Bououdina, M. .
JOURNAL OF SUPERCONDUCTIVITY AND NOVEL MAGNETISM, 2019, 32 (04) :779-795
[3]  
Akbar S., ARXIV COND MAT 04084
[4]   AN in vitro evaluation of a carmustine-loaded Nano-co-Plex for potential magnetic-targeted intranasal delivery to the brain [J].
Akilo, Olufemi D. ;
Choonara, Yahya E. ;
Strydom, Andre M. ;
du Toit, Lisa C. ;
Kumar, Pradeep ;
Modi, Girish ;
Pillay, Viness .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2016, 500 (1-2) :196-209
[5]   Magnetic Drug Targeting: Preclinical in Vivo Studies, Mathematical Modeling, and Extrapolation to Humans [J].
Al-Jamal, Khuloud T. ;
Bai, Jie ;
Wang, Julie Tzu-Wen ;
Protti, Andrea ;
Southern, Paul ;
Bogart, Lara ;
Heidari, Hamed ;
Li, Xinjia ;
Cakebread, Andrew ;
Asker, Dan ;
Al-Jamal, Wafa T. ;
Shah, Ajay ;
Bals, Sara ;
Sosabowski, Jane ;
Pankhurst, Quentin A. .
NANO LETTERS, 2016, 16 (09) :5652-5660
[6]   Synthesis, characterization, applications, and challenges of iron oxide nanoparticles [J].
Ali, Attarad ;
Zafar, Hira ;
Zia, Muhammad ;
Haq, Ihsan Ul ;
Phull, Abdul Rehman ;
Ali, Joham Sarfraz ;
Hussain, Altaf .
NANOTECHNOLOGY SCIENCE AND APPLICATIONS, 2016, 9 :49-67
[7]   Antibacterial magnetic nanoparticles for therapeutics: a review [J].
Allafchian, Alireza ;
Hosseini, Seyed Sajjad .
IET NANOBIOTECHNOLOGY, 2019, 13 (08) :786-799
[8]   New hybrid magnetic nanoparticles based on chitosan-maltose derivative for antitumor drug delivery [J].
Alupei, Liana ;
Peptu, Catalina Anisoara ;
Lungan, Andreea-Maria ;
Desbrieres, Jacques ;
Chiscan, Ovidiu ;
Radji, Sadia ;
Popa, Marcel .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2016, 92 :561-572
[9]  
Ambrozic G, 2011, MATER TEHNOL, V45, P173
[10]   Noninvasive MR imaging of magnetically labeled stem cells to directly identify neovasculature in a glioma model [J].
Anderson, SA ;
Glod, J ;
Arbab, AS ;
Noel, M ;
Ashari, P ;
Fine, HA ;
Frank, JA .
BLOOD, 2005, 105 (01) :420-425