Topics in Current Chemistry (2020) 378:40
1 3
67. Wang J, Sun J, Sun Q, Chen Q (2003) One-step hydrothermal process to prepare highly crystalline
Fe 3 O 4 nanoparticles with improved magnetic properties. Mater Res Bull 38(7):1113–1118. https ://
doi.org/10.1016/S0025 -5408(03)00129 -6
68. Li J, Shi X, Shen M (2014) Hydrothermal synthesis and functionalization of iron oxide nanoparticles for mr imaging applications. Part Part Syst Charact 31(12):1223–1237. https ://doi.
org/10.1002/ppsc.20140 0087
69. Lassoued A, Lassoued MS, Dkhil B, Ammar S, Gadri A (2018) Synthesis, photoluminescence and
magnetic properties of iron oxide (α-Fe 2 O 3 ) nanoparticles through precipitation or hydrothermal
methods. Phys E 101:212–219. https ://doi.org/10.1016/j.physe .2018.04.009
70. Pinna N, Grancharov S, Beato P, Bonville P, Antonietti M, Niederberger M (2005) Magnetite
nanocrystals: nonaqueous synthesis, characterization, and solubility. Chem Mater 17(11):3044–
3049. https ://doi.org/10.1021/cm050 060+
71. Nassar MY, Ahmed IS, Hendy HS (2018) A facile one-pot hydrothermal synthesis of hematite
(α-Fe 2 O 3 ) nanostructures and cephalexin antibiotic sorptive removal from polluted aqueous media.
J Mol Liq 271:844–856. https ://doi.org/10.1016/j.molli q.2018.09.057
72. Wilson D, Langell MA (2014) XPS analysis of oleylamine/oleic acid capped Fe 3 O 4 nanoparticles
as a function of temperature. Appl Surf Sci 303:6–13. https ://doi.org/10.1016/j.apsus c.2014.02.006
73. Brewster DA, Sarappa DJ, Knowles KE (2019) Role of aliphatic ligands and solvent composition in the solvothermal synthesis of iron oxide nanocrystals. Polyhedron 157:54–62. https ://doi.
org/10.1016/j.poly.2018.09.063
74. Huang J, Han J, Wang R, Zhang Y, Wang X, Zhang X, Zhang Z, Zhang Y, Song B, Jin S (2018)
Improving electrocatalysts for oxygen evolution using Ni x Fe 3 –xO 4 /Ni hybrid nanostructures formed
by solvothermal synthesis. ACS Energy Lett 3(7):1698–1707. https ://doi.org/10.1021/acsen ergyl
ett.8b008 88
75. Kim J, Tran VT, Oh S, Kim C-S, Hong JC, Kim S, Joo Y-S, Mun S, Kim M-H, Jung J-W, Lee
J, Kang YS, Koo J-W, Lee J (2018) Scalable solvothermal synthesis of superparamagnetic Fe 3 O 4
nanoclusters for bioseparation and theragnostic probes. ACS Appl Mater Interfaces 10(49):41935–
41946. https ://doi.org/10.1021/acsam i.8b141 56
76. Xiao J, Zhang G, Qian J, Sun X, Tian J, Zhong K, Cai D, Wu Z (2018) Fabricating high-performance T2-weighted contrast agents via adjusting composition and size of nanomagnetic iron oxide.
ACS Appl Mater Interfaces 10(8):7003–7011. https ://doi.org/10.1021/acsam i.8b004 28
77. Köçkar H, Karaagac O, Özel F (2019) Effects of biocompatible surfactants on structural and corresponding magnetic properties of iron oxide nanoparticles coated by hydrothermal process. J Magn
Magn Mater 474:332–336. https ://doi.org/10.1016/j.jmmm.2018.11.053
78. Fievet F, Lagier JP, Blin B, Beaudoin B, Figlarz M (1989) Homogeneous and heterogeneous nucleations in the polyol process for the preparation of micron and submicron size metal particles. Solid
State Ion 32–33:198–205. https ://doi.org/10.1016/0167-2738(89)90222 -1
79. Viau G, Fiévet-Vincent F, Fiévet F, Toneguzzo P, Ravel F, Acher O (1997) Size dependence of
microwave permeability of spherical ferromagnetic particles. J Appl Phys 81(6):2749–2754. https
://doi.org/10.1063/1.36397 9
80. Chakroune N, Viau G, Ricolleau C, Fiévet-Vincent F, Fiévet F (2003) Cobalt-based anisotropic
particles prepared by the polyol process. J Mater Chem 13(2):312–318. https ://doi.org/10.1039/
B2093 83A
81. Viau G, Toneguzzo P, Pierrard A, Acher O, Fiévet-Vincent F, Fiévet F (2001) Heterogeneous
nucleation and growth of metal nanoparticles in polyols. Script Mater 44(8):2263–2267. https ://
doi.org/10.1016/S1359 -6462(01)00752 -7
82. Ammar S, Helfen A, Jouini N, Fiévet F, Rosenman I, Villain F, Molinié P, Danot M (2001) Magnetic properties of ultrafine cobalt ferrite particles synthesized by hydrolysis in a polyol medium. J
Mater Chem 11(1):186–192. https ://doi.org/10.1039/B0031 93N
83. Chow GM, Kurihara LK, Kemner KM, Schoen PE, Elam WT, Ervin A, Keller S, Zhang YD,
Budnick J, Ambrose T (2011) Structural, morphological, and magnetic study of nanocrystalline
cobalt-copper powders synthesized by the polyol process. J Mater Res 10(6):1546–1554. https ://
doi.org/10.1557/JMR.1995.1546
84. Jungk HO, Feldmann C (2011) Nonagglomerated, submicron α-Fe 2 O 3 particles: preparation and
application. J Mater Res 15(10):2244–2248. https ://doi.org/10.1557/JMR.2000.0322
85. Caruntu D, Caruntu G, Chen Y, O’Connor CJ, Goloverda G, Kolesnichenko VL (2004) Synthesis
of variable-sized nanocrystals of Fe 3 O 4 with high surface reactivity. Chem Mater 16(25):5527–
5534. https ://doi.org/10.1021/cm048 7977
78
Reprinted from the journal
1 3
67. Wang J, Sun J, Sun Q, Chen Q (2003) One-step hydrothermal process to prepare highly crystalline
Fe 3 O 4 nanoparticles with improved magnetic properties. Mater Res Bull 38(7):1113–1118. https ://
doi.org/10.1016/S0025 -5408(03)00129 -6
68. Li J, Shi X, Shen M (2014) Hydrothermal synthesis and functionalization of iron oxide nanoparticles for mr imaging applications. Part Part Syst Charact 31(12):1223–1237. https ://doi.
org/10.1002/ppsc.20140 0087
69. Lassoued A, Lassoued MS, Dkhil B, Ammar S, Gadri A (2018) Synthesis, photoluminescence and
magnetic properties of iron oxide (α-Fe 2 O 3 ) nanoparticles through precipitation or hydrothermal
methods. Phys E 101:212–219. https ://doi.org/10.1016/j.physe .2018.04.009
70. Pinna N, Grancharov S, Beato P, Bonville P, Antonietti M, Niederberger M (2005) Magnetite
nanocrystals: nonaqueous synthesis, characterization, and solubility. Chem Mater 17(11):3044–
3049. https ://doi.org/10.1021/cm050 060+
71. Nassar MY, Ahmed IS, Hendy HS (2018) A facile one-pot hydrothermal synthesis of hematite
(α-Fe 2 O 3 ) nanostructures and cephalexin antibiotic sorptive removal from polluted aqueous media.
J Mol Liq 271:844–856. https ://doi.org/10.1016/j.molli q.2018.09.057
72. Wilson D, Langell MA (2014) XPS analysis of oleylamine/oleic acid capped Fe 3 O 4 nanoparticles
as a function of temperature. Appl Surf Sci 303:6–13. https ://doi.org/10.1016/j.apsus c.2014.02.006
73. Brewster DA, Sarappa DJ, Knowles KE (2019) Role of aliphatic ligands and solvent composition in the solvothermal synthesis of iron oxide nanocrystals. Polyhedron 157:54–62. https ://doi.
org/10.1016/j.poly.2018.09.063
74. Huang J, Han J, Wang R, Zhang Y, Wang X, Zhang X, Zhang Z, Zhang Y, Song B, Jin S (2018)
Improving electrocatalysts for oxygen evolution using Ni x Fe 3 –xO 4 /Ni hybrid nanostructures formed
by solvothermal synthesis. ACS Energy Lett 3(7):1698–1707. https ://doi.org/10.1021/acsen ergyl
ett.8b008 88
75. Kim J, Tran VT, Oh S, Kim C-S, Hong JC, Kim S, Joo Y-S, Mun S, Kim M-H, Jung J-W, Lee
J, Kang YS, Koo J-W, Lee J (2018) Scalable solvothermal synthesis of superparamagnetic Fe 3 O 4
nanoclusters for bioseparation and theragnostic probes. ACS Appl Mater Interfaces 10(49):41935–
41946. https ://doi.org/10.1021/acsam i.8b141 56
76. Xiao J, Zhang G, Qian J, Sun X, Tian J, Zhong K, Cai D, Wu Z (2018) Fabricating high-performance T2-weighted contrast agents via adjusting composition and size of nanomagnetic iron oxide.
ACS Appl Mater Interfaces 10(8):7003–7011. https ://doi.org/10.1021/acsam i.8b004 28
77. Köçkar H, Karaagac O, Özel F (2019) Effects of biocompatible surfactants on structural and corresponding magnetic properties of iron oxide nanoparticles coated by hydrothermal process. J Magn
Magn Mater 474:332–336. https ://doi.org/10.1016/j.jmmm.2018.11.053
78. Fievet F, Lagier JP, Blin B, Beaudoin B, Figlarz M (1989) Homogeneous and heterogeneous nucleations in the polyol process for the preparation of micron and submicron size metal particles. Solid
State Ion 32–33:198–205. https ://doi.org/10.1016/0167-2738(89)90222 -1
79. Viau G, Fiévet-Vincent F, Fiévet F, Toneguzzo P, Ravel F, Acher O (1997) Size dependence of
microwave permeability of spherical ferromagnetic particles. J Appl Phys 81(6):2749–2754. https
://doi.org/10.1063/1.36397 9
80. Chakroune N, Viau G, Ricolleau C, Fiévet-Vincent F, Fiévet F (2003) Cobalt-based anisotropic
particles prepared by the polyol process. J Mater Chem 13(2):312–318. https ://doi.org/10.1039/
B2093 83A
81. Viau G, Toneguzzo P, Pierrard A, Acher O, Fiévet-Vincent F, Fiévet F (2001) Heterogeneous
nucleation and growth of metal nanoparticles in polyols. Script Mater 44(8):2263–2267. https ://
doi.org/10.1016/S1359 -6462(01)00752 -7
82. Ammar S, Helfen A, Jouini N, Fiévet F, Rosenman I, Villain F, Molinié P, Danot M (2001) Magnetic properties of ultrafine cobalt ferrite particles synthesized by hydrolysis in a polyol medium. J
Mater Chem 11(1):186–192. https ://doi.org/10.1039/B0031 93N
83. Chow GM, Kurihara LK, Kemner KM, Schoen PE, Elam WT, Ervin A, Keller S, Zhang YD,
Budnick J, Ambrose T (2011) Structural, morphological, and magnetic study of nanocrystalline
cobalt-copper powders synthesized by the polyol process. J Mater Res 10(6):1546–1554. https ://
doi.org/10.1557/JMR.1995.1546
84. Jungk HO, Feldmann C (2011) Nonagglomerated, submicron α-Fe 2 O 3 particles: preparation and
application. J Mater Res 15(10):2244–2248. https ://doi.org/10.1557/JMR.2000.0322
85. Caruntu D, Caruntu G, Chen Y, O’Connor CJ, Goloverda G, Kolesnichenko VL (2004) Synthesis
of variable-sized nanocrystals of Fe 3 O 4 with high surface reactivity. Chem Mater 16(25):5527–
5534. https ://doi.org/10.1021/cm048 7977
78
Reprinted from the journal
