1 3
Topics in Current Chemistry (2020) 378:40
200. Bharde A, Rautaray D, Bansal V, Ahmad A, Sarkar I, Yusuf SM, Sanyal M, Sastry M (2006)
Extracellular biosynthesis of magnetite using fungi. Small 2(1):135–141. https ://doi.org/10.1002/
smll.20050 0180
201. Shenton W, Douglas T, Young M, Stubbs G, Mann S (1999) Inorganic–organic nanotube composites from template mineralization of tobacco mosaic virus. Adv Mater 11(3):253–256. https ://doi.
org/10.1002/(SICI)1521-4095(19990 3)11:3%3c253 :AID-ADMA2 53%3e3.0.CO;2-7
202. Aeppli M, Kaegi R, Kretzschmar R, Voegelin A, Hofstetter TB, Sander M (2019) Electrochemical
analysis of changes in iron oxide reducibility during abiotic ferrihydrite transformation into goethite and magnetite. Environ Sci Technol 53(7):3568–3578. https ://doi.org/10.1021/acs.est.8b071
90
203. Moon J-W, Rawn CJ, Rondinone AJ, Love LJ, Roh Y, Everett SM, Lauf RJ, Phelps TJ (2010)
Large-scale production of magnetic nanoparticles using bacterial fermentation. J Ind Microbiol
Biotechnol 37(10):1023–1031. https ://doi.org/10.1007/s1029 5-010-0749-y
204. Iravani S (2011) Green synthesis of metal nanoparticles using plants. Green Chem 13(10):2638–
2650. https ://doi.org/10.1039/C1GC1 5386B
205. Aksu Demirezen D, Yıldız YŞ, Yılmaz Ş, Demirezen Yılmaz D (2019) Green synthesis and characterization of iron oxide nanoparticles using Ficus carica (common fig) dried fruit extract. J
Biosci Bioeng 127(2):241–245. https ://doi.org/10.1016/j.jbios c.2018.07.024
206. Lohrasbi S, Kouhbanani MAJ, Beheshtkhoo N, Ghasemi Y, Amani AM, Taghizadeh S (2019)
Green synthesis of iron nanoparticles using plantago major leaf extract and their application as a
catalyst for the decolorization of azo dye. BioNanoScience 9(2):317–322. https ://doi.org/10.1007/
s1266 8-019-0596-x
207. Salazar-Alvarez G, Muhammed M, Zagorodni AA (2006) Novel flow injection synthesis of iron
oxide nanoparticles with narrow size distribution. Chem Eng Sci 61(14):4625–4633. https ://doi.
org/10.1016/j.ces.2006.02.032
208. Dierstein A, Natter H, Meyer F, Stephan HO, Kropf C, Hempelmann R (2001) Electrochemical
deposition under oxidizing conditions (EDOC): a new synthesis for nanocrystalline metal oxides.
Scripta Mater 44(8):2209–2212. https ://doi.org/10.1016/S1359 -6462(01)00906 -X
209. Pascal C, Pascal JL, Favier F, Elidrissi Moubtassim ML, Payen C (1999) Electrochemical synthesis
for the control of γ-Fe2O3 nanoparticle size. Morphology, microstructure, and magnetic behavior.
Chem Mater 11(1):141–147. https ://doi.org/10.1021/cm980 742f
210. Ramimoghadam D, Bagheri S, Hamid SBA (2014) Progress in electrochemical synthesis of
magnetic iron oxide nanoparticles. J Magn Magn Mater 368:207–229. https ://doi.org/10.1016/j.
jmmm.2014.05.015
211. Carraro G, Barreca D, Maccato C, Bontempi E, Depero LE, de Julián FC, Caneschi A (2013) Supported ε and β iron oxide nanomaterials by chemical vapor deposition: structure, morphology and
magnetic properties. CrystEngComm 15(6):1039–1042. https ://doi.org/10.1039/C2CE2 6821C
212. Alijani H, Beyki MH, Shariatinia Z, Bayat M, Shemirani F (2014) A new approach for one step
synthesis of magnetic carbon nanotubes/diatomite earth composite by chemical vapor deposition
method: application for removal of lead ions. Chem Eng J 253:456–463. https ://doi.org/10.1016/j.
cej.2014.05.021
213. Morjan I, Alexandrescu R, Dumitrache F, Birjega R, Fleaca C, Soare I, Luculescu CR, Filoti G,
Kuncer V, Vekas L, Popa NC, Prodan G, Ciupina V (2010) Iron oxide-based nanoparticles with
different mean sizes obtained by the laser pyrolysis: structural and magnetic properties. J Nanosci
Nanotechnol 10(2):1223–1234. https ://doi.org/10.1166/jnn.2010.1863
214. Dinesha ML, Jayanna HS, Mohanty S, Ravi S (2010) Structural, electrical and magnetic properties of Co and Fe co-doped ZnO nanoparticles prepared by solution combustion method. J Alloy
Compd 490(1):618–623. https ://doi.org/10.1016/j.jallc om.2009.10.120
215. Ma J, Lee SM-Y, Yi C, Li C-W (2017) Controllable synthesis of functional nanoparticles by microfluidic platforms for biomedical applications—a review. Lab Chip 17(2):209–226. https ://doi.
org/10.1039/C6LC0 1049K
216. Hwang DK, Dendukuri D, Doyle PS (2008) Microfluidic-based synthesis of non-spherical magnetic hydrogel microparticles. Lab Chip 8(10):1640–1647. https ://doi.org/10.1039/B8051 76C
217. Wei J, Shuai X, Wang R, He X, Li Y, Ding M, Li J, Tan H, Fu Q (2017) Clickable and imageable
multiblock polymer micelles with magnetically guided and PEG-switched targeting and release
property for precise tumor theranosis. Biomaterials 145:138–153. https ://doi.org/10.1016/j.bioma
teria ls.2017.08.005
85
Reprinted from the journal
Topics in Current Chemistry (2020) 378:40
200. Bharde A, Rautaray D, Bansal V, Ahmad A, Sarkar I, Yusuf SM, Sanyal M, Sastry M (2006)
Extracellular biosynthesis of magnetite using fungi. Small 2(1):135–141. https ://doi.org/10.1002/
smll.20050 0180
201. Shenton W, Douglas T, Young M, Stubbs G, Mann S (1999) Inorganic–organic nanotube composites from template mineralization of tobacco mosaic virus. Adv Mater 11(3):253–256. https ://doi.
org/10.1002/(SICI)1521-4095(19990 3)11:3%3c253 :AID-ADMA2 53%3e3.0.CO;2-7
202. Aeppli M, Kaegi R, Kretzschmar R, Voegelin A, Hofstetter TB, Sander M (2019) Electrochemical
analysis of changes in iron oxide reducibility during abiotic ferrihydrite transformation into goethite and magnetite. Environ Sci Technol 53(7):3568–3578. https ://doi.org/10.1021/acs.est.8b071
90
203. Moon J-W, Rawn CJ, Rondinone AJ, Love LJ, Roh Y, Everett SM, Lauf RJ, Phelps TJ (2010)
Large-scale production of magnetic nanoparticles using bacterial fermentation. J Ind Microbiol
Biotechnol 37(10):1023–1031. https ://doi.org/10.1007/s1029 5-010-0749-y
204. Iravani S (2011) Green synthesis of metal nanoparticles using plants. Green Chem 13(10):2638–
2650. https ://doi.org/10.1039/C1GC1 5386B
205. Aksu Demirezen D, Yıldız YŞ, Yılmaz Ş, Demirezen Yılmaz D (2019) Green synthesis and characterization of iron oxide nanoparticles using Ficus carica (common fig) dried fruit extract. J
Biosci Bioeng 127(2):241–245. https ://doi.org/10.1016/j.jbios c.2018.07.024
206. Lohrasbi S, Kouhbanani MAJ, Beheshtkhoo N, Ghasemi Y, Amani AM, Taghizadeh S (2019)
Green synthesis of iron nanoparticles using plantago major leaf extract and their application as a
catalyst for the decolorization of azo dye. BioNanoScience 9(2):317–322. https ://doi.org/10.1007/
s1266 8-019-0596-x
207. Salazar-Alvarez G, Muhammed M, Zagorodni AA (2006) Novel flow injection synthesis of iron
oxide nanoparticles with narrow size distribution. Chem Eng Sci 61(14):4625–4633. https ://doi.
org/10.1016/j.ces.2006.02.032
208. Dierstein A, Natter H, Meyer F, Stephan HO, Kropf C, Hempelmann R (2001) Electrochemical
deposition under oxidizing conditions (EDOC): a new synthesis for nanocrystalline metal oxides.
Scripta Mater 44(8):2209–2212. https ://doi.org/10.1016/S1359 -6462(01)00906 -X
209. Pascal C, Pascal JL, Favier F, Elidrissi Moubtassim ML, Payen C (1999) Electrochemical synthesis
for the control of γ-Fe2O3 nanoparticle size. Morphology, microstructure, and magnetic behavior.
Chem Mater 11(1):141–147. https ://doi.org/10.1021/cm980 742f
210. Ramimoghadam D, Bagheri S, Hamid SBA (2014) Progress in electrochemical synthesis of
magnetic iron oxide nanoparticles. J Magn Magn Mater 368:207–229. https ://doi.org/10.1016/j.
jmmm.2014.05.015
211. Carraro G, Barreca D, Maccato C, Bontempi E, Depero LE, de Julián FC, Caneschi A (2013) Supported ε and β iron oxide nanomaterials by chemical vapor deposition: structure, morphology and
magnetic properties. CrystEngComm 15(6):1039–1042. https ://doi.org/10.1039/C2CE2 6821C
212. Alijani H, Beyki MH, Shariatinia Z, Bayat M, Shemirani F (2014) A new approach for one step
synthesis of magnetic carbon nanotubes/diatomite earth composite by chemical vapor deposition
method: application for removal of lead ions. Chem Eng J 253:456–463. https ://doi.org/10.1016/j.
cej.2014.05.021
213. Morjan I, Alexandrescu R, Dumitrache F, Birjega R, Fleaca C, Soare I, Luculescu CR, Filoti G,
Kuncer V, Vekas L, Popa NC, Prodan G, Ciupina V (2010) Iron oxide-based nanoparticles with
different mean sizes obtained by the laser pyrolysis: structural and magnetic properties. J Nanosci
Nanotechnol 10(2):1223–1234. https ://doi.org/10.1166/jnn.2010.1863
214. Dinesha ML, Jayanna HS, Mohanty S, Ravi S (2010) Structural, electrical and magnetic properties of Co and Fe co-doped ZnO nanoparticles prepared by solution combustion method. J Alloy
Compd 490(1):618–623. https ://doi.org/10.1016/j.jallc om.2009.10.120
215. Ma J, Lee SM-Y, Yi C, Li C-W (2017) Controllable synthesis of functional nanoparticles by microfluidic platforms for biomedical applications—a review. Lab Chip 17(2):209–226. https ://doi.
org/10.1039/C6LC0 1049K
216. Hwang DK, Dendukuri D, Doyle PS (2008) Microfluidic-based synthesis of non-spherical magnetic hydrogel microparticles. Lab Chip 8(10):1640–1647. https ://doi.org/10.1039/B8051 76C
217. Wei J, Shuai X, Wang R, He X, Li Y, Ding M, Li J, Tan H, Fu Q (2017) Clickable and imageable
multiblock polymer micelles with magnetically guided and PEG-switched targeting and release
property for precise tumor theranosis. Biomaterials 145:138–153. https ://doi.org/10.1016/j.bioma
teria ls.2017.08.005
85
Reprinted from the journal
