Co-precipitation synthesis of stable iron oxide nanoparticles with NaOH: New insights and continuous production via flow chemistry

被引:143
作者
Besenhard, Maximilian O. [1 ]
LaGrow, Alec P. [2 ,3 ]
Hodzic, Aden [5 ]
Kriechbaum, Manfred [4 ]
Panariello, Luca [1 ]
Bais, Giorgio [6 ]
Loizou, Katerina [1 ]
Damilos, Spyridon [1 ]
Cruz, M. Margarida [7 ]
Thanh, Nguyen Thi Kim [2 ,3 ]
Gavriilidis, Asterios [1 ]
机构
[1] UCL, Dept Chem Engn, Torrington Pl, London WC1E 7JE, England
[2] UCL, Dept Phys & Astron, Gower St, London WC1E 6BT, England
[3] UCL, UCL Healthcare Biomagnet & Nanomat Labs, 21 Albemarle St, London W1S 4BS, England
[4] Graz Univ Technol, Inst Inorgan Chem, Stremayrgasse 9, A-8010 Graz, Austria
[5] Cent European Res Infrastruct Consortium, Area Sci Pk, I-34149 Basovizza, Italy
[6] Elettra Sincrotrone Trieste, Area Sci Pk, I-34149 Basovizza, Italy
[7] Univ Lisbon, Fac Ciencias, Biosyst & Integrat Sci Inst, P-1749016 Lisbon, Portugal
基金
英国工程与自然科学研究理事会; 欧盟地平线“2020”;
关键词
In-situ XRD; In-situ SAXS; Nanoparticle formation kinetics; Co-precipitation; Multistage flow reactor; Continuous production; MAGNETITE; GROWTH; FUNCTIONALIZATION; MICROREACTOR; NUCLEATION; MECHANISM; CLUSTERS; DELIVERY; AGENTS; MRI;
D O I
10.1016/j.cej.2020.125740
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Co-precipitation is by far the most common synthesis for magnetic iron oxide nanoparticles (IONPs), as cheap and environmentally friendly precursors and simple experimental procedures facilitate IONP production in many labs. Optimising co-precipitation syntheses remains challenging however, as particle formation mechanisms are not well understood. This is partly due to the rapid particle formation (within seconds) providing insufficient time to characterise initial precipitates. To overcome this limitation, a flow chemistry approach has been developed using steady-state operation to "freeze" transient reaction states locally. This allowed for the first time a comprehensive analysis of the early stages of co-precipitation syntheses via in-situ Small Angle X-ray Scattering and in-situ synchrotron X-Ray Diffraction. These studies revealed that after mixing the ferrous/ferric chloride precursor with the NaOH base solution, the most magnetic iron oxide phase forms within 5 s, the particle size changes only marginally afterwards, and co-precipitation and agglomeration occur simultaneously. As these agglomerates were too large to achieve colloidal stability via subsequent stabiliser addition, co-precipitated IONPs had to be de-agglomerated. This was achieved by adding the appropriate quantity of a citric acid solution which yielded within minutes colloidally stable IONP solutions around a neutral pH value. The new insights into the particle formation and the novel stabilisation procedure (not requiring any ultra-sonication or washing step) allowed to design a multistage flow reactor to synthesise and stabilise IONPs continuously with a residence time of less than 5 min. This reactor was robust against fouling and produced stable IONP solutions (of similar to 1.5 mg particles per ml) reproducibly via fast mixing (< 50 ms) and accurate temperature control at large scale (> 500 ml/h) for low materials cost.
引用
收藏
页数:10
相关论文
共 52 条
[1]   Formation Pathways of Magnetite Nanoparticles by Coprecipitation Method [J].
Ahn, Taebin ;
Kim, Jong Hun ;
Yang, Hee-Man ;
Lee, Jeong Woo ;
Kim, Jong-Duk .
JOURNAL OF PHYSICAL CHEMISTRY C, 2012, 116 (10) :6069-6076
[2]  
[Anonymous], 2016, J NANOPART RES, DOI DOI 10.1007/S11051-016-3327-Z
[3]   Applications of Ultrasound to the Synthesis of Nanostructured Materials [J].
Bang, Jin Ho ;
Suslick, Kenneth S. .
ADVANCED MATERIALS, 2010, 22 (10) :1039-1059
[4]   Magnetic iron oxide nanoparticles as T1 contrast agents for magnetic resonance imaging [J].
Bao, Y. ;
Sherwood, J. A. ;
Sun, Z. .
JOURNAL OF MATERIALS CHEMISTRY C, 2018, 6 (06) :1280-1290
[5]  
Baumgartner J, 2013, NAT MATER, V12, P310, DOI [10.1038/NMAT3558, 10.1038/nmat3558]
[6]   Crystal Engineering in Continuous Plug-Flow Crystallizers [J].
Besenhard, Maximilian O. ;
Neugebauer, Peter ;
Scheibelhofer, Otto ;
Khinast, Johannes G. .
CRYSTAL GROWTH & DESIGN, 2017, 17 (12) :6432-6444
[7]   Elucidating the morphological and structural evolution of iron oxide nanoparticles formed by sodium carbonate in aqueous medium [J].
Blanco-Andujar, Cristina ;
Ortega, Daniel ;
Pankhurst, Quentin A. ;
Thanh, Nguyen Thi Kim .
JOURNAL OF MATERIALS CHEMISTRY, 2012, 22 (25) :12498-12506
[8]   Preparation of Monodisperse Iron Oxide Nanoparticles via the Synthesis and Decomposition of Iron Fatty Acid Complexes [J].
Chen, Chih-Jung ;
Lai, Hsin-Yi ;
Lin, Chee-Cheng ;
Wang, Jiun-Shen ;
Chiang, Ray-Kuang .
NANOSCALE RESEARCH LETTERS, 2009, 4 (11) :1343-1350
[9]   Magnetic iron oxide nanoparticles as drug carriers: preparation, conjugation and delivery [J].
El-Boubbou, Kheireddine .
NANOMEDICINE, 2018, 13 (08) :929-952
[10]  
Elmer WH, 2016, ENVIRON SCI-NANO, V3, P1072, DOI [10.1039/c6en00146g, 10.1039/C6EN00146G]