Topics in Current Chemistry (2020) 378:12
1 3
49. Topcu G, Guner T, Inci E, Demir MM (2019) Colorimetric and plasmonic pressure sensors
based on polyacrylamide/Au nanoparticles. Sensors Actuat A-Phys 295:503–511. https ://doi.
org/10.1016/j.sna.2019.06.038
50. Vishnoi R, Sharma K, Sharma GD, Singhal R (2019) Temperature induced surface plasmon resonance in Au/a-C nanocomposite thin film. Vacuum 167:40–46. https ://doi.org/10.1016/j.vacuu
m.2019.05.031
51. Su C (2017) Environmental implications and applications of engineered nanoscale magnetite and
its hybrid nanocomposites: a review of recent literature. J Hazard Mater 322:48–84. https ://doi.
org/10.1016/j.jhazm at.2016.06.060
52. Morrish AH (2001) The physical principles of magnetism. IEEE Magnetics Society. Wiley-IEEE,
New York
53. Kolhatkar AG, Jamison AC, Litvinov D et al (2013) Tuning the magnetic properties of nanoparticles. Int J Mol Sci 14:15977–16009. https ://doi.org/10.3390/ijms1 40815 977
54. Leslie-Pelecky DL, Rieke RD (1996) Magnetic properties of nanostructured materials. Chem
Mater 8:1770–1783. https ://doi.org/10.1021/cm960 077f
55. Soares PIP, Laia CAT, Carvalho A et al (2016) Iron oxide nanoparticles stabilized with a bilayer
of oleic acid for magnetic hyperthermia and MRI applications. Appl Surf Sci 383:240–247. https ://
doi.org/10.1016/j.apsus c.2016.04.181
56. Kandasamy G, Sudame A, Bhati P et al (2018) Systematic investigations on heating effects of
carboxyl-amine functionalized superparamagnetic iron oxide nanoparticles (SPIONs) based ferrofluids for in vitro cancer hyperthermia therapy. J Mol Liq 256:224–237. https ://doi.org/10.1016/j.
molli q.2018.02.029
57. Ebrahimisadr S, Aslibeiki B, Asadi R (2018) Magnetic hyperthermia properties of iron oxide
nanoparticles: the effect of concentration. Phys C 549:119–121. https ://doi.org/10.1016/j.physc
.2018.02.014
58. Cornell RM, Schwertmann U (2003) Crystal structure. In: The iron oxides: structures, properties,
reactions, occurrences and uses, 2nd, completely revised and extended edition. Wiley-VCH, Weinheim, pp 9–33
59. Qin L, Zeng G, Lai C et al (2018) “Gold rush” in modern science: fabrication strategies and typical advanced applications of gold nanoparticles in sensing. Coord Chem Rev 359:1–31. https ://doi.
org/10.1016/j.ccr.2018.01.006
60. Liu A, Wang G, Wang F, Zhang Y (2017) Gold nanostructures with near-infrared plasmonic
resonance: synthesis and surface functionalization. Coord Chem Rev 336:28–42. https ://doi.
org/10.1016/j.ccr.2016.12.019
61. Turkevich J, Stevenson PC, Hillier J (1951) A study of the nucleation and growth processes in the
synthesis of colloidal gold. Discuss Faraday Soc 11:55–75. https ://doi.org/10.1039/DF951 11000 55
62. Bartosewicz B, Bujno K, Liszewska M et al (2018) Effect of citrate substitution by various
α-hydroxycarboxylate anions on properties of gold nanoparticles synthesized by Turkevich method.
Coll Surf A Physicochem Eng Asp 549:25–33. https ://doi.org/10.1016/j.colsu rfa.2018.03.073
63. Brust M, Walker M, Bethell D et al (1994) Synthesis of thiol-derivatised gold nanoparticles in
a two-phase liquid–liquid system. J Chem Soc Chem Commun 1994:801–802. https ://doi.
org/10.1039/C3994 00008 01
64. Kim YJ, Park J, Jeong HS et al (2019) A seed-mediated growth of gold nanoparticles inside carbon
nanotube fibers for fabrication of multifunctional nanohybrid fibers with enhanced mechanical and
electrical properties. Nanoscale 11:5295–5303. https ://doi.org/10.1039/c8nr1 0446h
65. Song C, Li F, Guo X et al (2019) Gold nanostars for cancer cell-targeted SERS-imaging and NIR
light-triggered plasmonic photothermal therapy (PPTT) in the first and second biological windows.
J Mater Chem B 7:2001–2008. https ://doi.org/10.1039/c9tb0 0061e
66. Wiesner J, Wokaun A (1989) Anisometric gold colloids. Preparation, characterization, and optical
properties. Chem Phys Lett 157:569–575. https ://doi.org/10.1016/S0009 -2614(89)87413 -5
67. Philip A, Ankudze B, Pakkanen TT (2018) Polyethylenimine-assisted seed-mediated synthesis of
gold nanoparticles for surface-enhanced Raman scattering studies. Appl Surf Sci 444:243–252.
https ://doi.org/10.1016/j.apsus c.2018.03.042
68. Vágó A, Szakacs G, Sáfrán G et al (2016) One-step green synthesis of gold nanoparticles by mesophilic filamentous fungi. Chem Phys Lett 645:1–4. https ://doi.org/10.1016/j.cplet t.2015.12.019
69. Vimalraj S, Ashokkumar T, Saravanan S (2018) Biogenic gold nanoparticles synthesis mediated
by Mangifera indica seed aqueous extracts exhibits antibacterial, anticancer and anti-angiogenic
properties. Biomed Pharmacother 105:440–448. https ://doi.org/10.1016/j.bioph a.2018.05.151
122
Reprinted from the journal
1 3
49. Topcu G, Guner T, Inci E, Demir MM (2019) Colorimetric and plasmonic pressure sensors
based on polyacrylamide/Au nanoparticles. Sensors Actuat A-Phys 295:503–511. https ://doi.
org/10.1016/j.sna.2019.06.038
50. Vishnoi R, Sharma K, Sharma GD, Singhal R (2019) Temperature induced surface plasmon resonance in Au/a-C nanocomposite thin film. Vacuum 167:40–46. https ://doi.org/10.1016/j.vacuu
m.2019.05.031
51. Su C (2017) Environmental implications and applications of engineered nanoscale magnetite and
its hybrid nanocomposites: a review of recent literature. J Hazard Mater 322:48–84. https ://doi.
org/10.1016/j.jhazm at.2016.06.060
52. Morrish AH (2001) The physical principles of magnetism. IEEE Magnetics Society. Wiley-IEEE,
New York
53. Kolhatkar AG, Jamison AC, Litvinov D et al (2013) Tuning the magnetic properties of nanoparticles. Int J Mol Sci 14:15977–16009. https ://doi.org/10.3390/ijms1 40815 977
54. Leslie-Pelecky DL, Rieke RD (1996) Magnetic properties of nanostructured materials. Chem
Mater 8:1770–1783. https ://doi.org/10.1021/cm960 077f
55. Soares PIP, Laia CAT, Carvalho A et al (2016) Iron oxide nanoparticles stabilized with a bilayer
of oleic acid for magnetic hyperthermia and MRI applications. Appl Surf Sci 383:240–247. https ://
doi.org/10.1016/j.apsus c.2016.04.181
56. Kandasamy G, Sudame A, Bhati P et al (2018) Systematic investigations on heating effects of
carboxyl-amine functionalized superparamagnetic iron oxide nanoparticles (SPIONs) based ferrofluids for in vitro cancer hyperthermia therapy. J Mol Liq 256:224–237. https ://doi.org/10.1016/j.
molli q.2018.02.029
57. Ebrahimisadr S, Aslibeiki B, Asadi R (2018) Magnetic hyperthermia properties of iron oxide
nanoparticles: the effect of concentration. Phys C 549:119–121. https ://doi.org/10.1016/j.physc
.2018.02.014
58. Cornell RM, Schwertmann U (2003) Crystal structure. In: The iron oxides: structures, properties,
reactions, occurrences and uses, 2nd, completely revised and extended edition. Wiley-VCH, Weinheim, pp 9–33
59. Qin L, Zeng G, Lai C et al (2018) “Gold rush” in modern science: fabrication strategies and typical advanced applications of gold nanoparticles in sensing. Coord Chem Rev 359:1–31. https ://doi.
org/10.1016/j.ccr.2018.01.006
60. Liu A, Wang G, Wang F, Zhang Y (2017) Gold nanostructures with near-infrared plasmonic
resonance: synthesis and surface functionalization. Coord Chem Rev 336:28–42. https ://doi.
org/10.1016/j.ccr.2016.12.019
61. Turkevich J, Stevenson PC, Hillier J (1951) A study of the nucleation and growth processes in the
synthesis of colloidal gold. Discuss Faraday Soc 11:55–75. https ://doi.org/10.1039/DF951 11000 55
62. Bartosewicz B, Bujno K, Liszewska M et al (2018) Effect of citrate substitution by various
α-hydroxycarboxylate anions on properties of gold nanoparticles synthesized by Turkevich method.
Coll Surf A Physicochem Eng Asp 549:25–33. https ://doi.org/10.1016/j.colsu rfa.2018.03.073
63. Brust M, Walker M, Bethell D et al (1994) Synthesis of thiol-derivatised gold nanoparticles in
a two-phase liquid–liquid system. J Chem Soc Chem Commun 1994:801–802. https ://doi.
org/10.1039/C3994 00008 01
64. Kim YJ, Park J, Jeong HS et al (2019) A seed-mediated growth of gold nanoparticles inside carbon
nanotube fibers for fabrication of multifunctional nanohybrid fibers with enhanced mechanical and
electrical properties. Nanoscale 11:5295–5303. https ://doi.org/10.1039/c8nr1 0446h
65. Song C, Li F, Guo X et al (2019) Gold nanostars for cancer cell-targeted SERS-imaging and NIR
light-triggered plasmonic photothermal therapy (PPTT) in the first and second biological windows.
J Mater Chem B 7:2001–2008. https ://doi.org/10.1039/c9tb0 0061e
66. Wiesner J, Wokaun A (1989) Anisometric gold colloids. Preparation, characterization, and optical
properties. Chem Phys Lett 157:569–575. https ://doi.org/10.1016/S0009 -2614(89)87413 -5
67. Philip A, Ankudze B, Pakkanen TT (2018) Polyethylenimine-assisted seed-mediated synthesis of
gold nanoparticles for surface-enhanced Raman scattering studies. Appl Surf Sci 444:243–252.
https ://doi.org/10.1016/j.apsus c.2018.03.042
68. Vágó A, Szakacs G, Sáfrán G et al (2016) One-step green synthesis of gold nanoparticles by mesophilic filamentous fungi. Chem Phys Lett 645:1–4. https ://doi.org/10.1016/j.cplet t.2015.12.019
69. Vimalraj S, Ashokkumar T, Saravanan S (2018) Biogenic gold nanoparticles synthesis mediated
by Mangifera indica seed aqueous extracts exhibits antibacterial, anticancer and anti-angiogenic
properties. Biomed Pharmacother 105:440–448. https ://doi.org/10.1016/j.bioph a.2018.05.151
122
Reprinted from the journal
