Topics in Current Chemistry (2020) 378:7
1 3
51. Sōmiya S, Roy R (2000) Hydrothermal synthesis of fine oxide powders. Bull Mater Sci 23:453–460
52. Einarsrud M-A, Grande T (2014) 1D oxide nanostructures from chemical solutions. Chem Soc Rev
43:2187–2199
53. Anpo M, Kamat PV (2010) Environmentally benign photocatalysts: applications of titanium oxidebased materials, Chap 1. Springer Science & Business Media
54. Zhou JK, Lv L, Yu J, Li HL, Guo P-Z, Sun H et al (2008) Synthesis of self-organized polycrystalline F-doped TiO2 hollow microspheres and their photocatalytic activity under visible light. J Phys
Chem C 112:5316–5321
55. Regalbuto J (2016) Catalyst preparation: science and engineering, Chap 8. CRC press
56. Nejati K, Rezvani Z, Pakizevand R (2011) Synthesis of ZnO nanoparticles and investigation of the
ionic template effect on their size and shape. Int Nano Lett 1:75–81
57. Vaiano V, Sacco O, Sannino D, Ciambelli P (2015) Process intensification in the removal of
organic pollutants from wastewater using innovative photocatalysts obtained coupling Zinc Sulfide
based phosphors with nitrogen doped semiconductors. J Clean Prod 100:208–211
58. Mittal M, Sharma M, Pandey O (2014) UV–Visible light induced photocatalytic studies of Cu
doped ZnO nanoparticles prepared by co-precipitation method. Sol Energy 110:386–397
59. Amornpitoksuk P, Suwanboon S, Sangkanu S, Sukhoom A, Muensit N, Baltrusaitis J (2012) Synthesis, characterization, photocatalytic and antibacterial activities of Ag-doped ZnO powders modified with a diblock copolymer. Powder Technol 219:158–164
60. Zhang Y, Stangle GC (1994) Preparation of fine multicomponent oxide ceramic powder by a combustion synthesis process. J Mater Res 9:1997–2004
61. Manoharan SS, Kumar N, Patil K (1990) Preparation of fine particle chromites: a combustion
approach. Mater Res Bull 25:731–738
62. Deganello F, Tyagi AK (2018) Solution combustion synthesis, energy and environment: Best
parameters for better materials. Prog Cryst Growth Charact Mater 64:23–61
63. Danks AE, Hall SR, Schnepp Z (2016) The evolution of ‘sol–gel’ chemistry as a technique for
materials synthesis. Mater Horiz 3:91–112
64. Peng K, Fu L, Yang H, Ouyang J (2016) Perovskite LaFeO 3 /montmorillonite nanocomposites: synthesis, interface characteristics and enhanced photocatalytic activity. Sci Rep 6:19723–19733
65. Parida K, Reddy K, Martha S, Das D, Biswal N (2010) Fabrication of nanocrystalline LaFeO 3 : an
efficient sol–gel auto-combustion assisted visible light responsive photocatalyst for water decomposition. Int J Hydrogen Energy 35:12161–12168
66. Sannino D, Vaiano V, Ciambelli P, Isupova LA (2011) Structured catalysts for photo-Fenton oxidation of acetic acid. Catal Today 161:255–259
67. Vaiano V, Iervolino G, Sannino D, Rizzo L, Sarno G, Ciambelli P et al (2015) Food Azo-Dyes
removal from water by heterogeneous photo-fenton with LaFeO 3 supported on honeycomb corundum monoliths. J Environ Eng 141(12):04015038
68. Sannino D, Vaiano V, Ciambelli P, Isupova L (2013) Mathematical modelling of the heterogeneous
photo-Fenton oxidation of acetic acid on structured catalysts. Chem Eng J 224:53–58
69. Suslick KS, Price GJ (1999) Applications of ultrasound to materials chemistry. Annu Rev Mater
Sci 29:295–326
70. Xu H, Zeiger BW, Suslick KS (2013) Sonochemical synthesis of nanomaterials. Chem Soc Rev
42:2555–2567
71. Teh CY, Wu TY, Juan JC (2017) An application of ultrasound technology in synthesis of titaniabased photocatalyst for degrading pollutant. Chem Eng J 317:586–612
72. Moholkar VS, Sivasankar T, Nalajala VS (2012) 20 Mechanistic aspects of ultrasound-enhanced
physical and chemical processes. In: Handbook on applications of, pp 501–531
73. Sancheti SV, Gogate PR (2017) A review of engineering aspects of intensification of chemical synthesis using ultrasound. Ultrason Sonochem 36:527–543
74. Huang W, Tang X, Wang Y, Koltypin Y, Gedanken A (2000) Selective synthesis of anatase and
rutile via ultrasound irradiation. Chem Commun 15(15):1415–1416
75. Jimmy CY, Zhang L, Yu J (2002) Rapid synthesis of mesoporous TiO 2 with high photocatalytic
activity by ultrasound-induced agglomeration. New J Chem 26:416–420
76. Boels L, Wagterveld R, Mayer M, Witkamp G (2010) Seeded calcite sonocrystallization. J Cryst
Growth 312:961–966
77. Tian C, Zhang Q, Wu A, Jiang M, Liang Z, Jiang B et al (2012) Cost-effective large-scale synthesis of ZnO photocatalyst with excellent performance for dye photodegradation. Chem Commun
48:2858–2860
258
Reprinted from the journal
1 3
51. Sōmiya S, Roy R (2000) Hydrothermal synthesis of fine oxide powders. Bull Mater Sci 23:453–460
52. Einarsrud M-A, Grande T (2014) 1D oxide nanostructures from chemical solutions. Chem Soc Rev
43:2187–2199
53. Anpo M, Kamat PV (2010) Environmentally benign photocatalysts: applications of titanium oxidebased materials, Chap 1. Springer Science & Business Media
54. Zhou JK, Lv L, Yu J, Li HL, Guo P-Z, Sun H et al (2008) Synthesis of self-organized polycrystalline F-doped TiO2 hollow microspheres and their photocatalytic activity under visible light. J Phys
Chem C 112:5316–5321
55. Regalbuto J (2016) Catalyst preparation: science and engineering, Chap 8. CRC press
56. Nejati K, Rezvani Z, Pakizevand R (2011) Synthesis of ZnO nanoparticles and investigation of the
ionic template effect on their size and shape. Int Nano Lett 1:75–81
57. Vaiano V, Sacco O, Sannino D, Ciambelli P (2015) Process intensification in the removal of
organic pollutants from wastewater using innovative photocatalysts obtained coupling Zinc Sulfide
based phosphors with nitrogen doped semiconductors. J Clean Prod 100:208–211
58. Mittal M, Sharma M, Pandey O (2014) UV–Visible light induced photocatalytic studies of Cu
doped ZnO nanoparticles prepared by co-precipitation method. Sol Energy 110:386–397
59. Amornpitoksuk P, Suwanboon S, Sangkanu S, Sukhoom A, Muensit N, Baltrusaitis J (2012) Synthesis, characterization, photocatalytic and antibacterial activities of Ag-doped ZnO powders modified with a diblock copolymer. Powder Technol 219:158–164
60. Zhang Y, Stangle GC (1994) Preparation of fine multicomponent oxide ceramic powder by a combustion synthesis process. J Mater Res 9:1997–2004
61. Manoharan SS, Kumar N, Patil K (1990) Preparation of fine particle chromites: a combustion
approach. Mater Res Bull 25:731–738
62. Deganello F, Tyagi AK (2018) Solution combustion synthesis, energy and environment: Best
parameters for better materials. Prog Cryst Growth Charact Mater 64:23–61
63. Danks AE, Hall SR, Schnepp Z (2016) The evolution of ‘sol–gel’ chemistry as a technique for
materials synthesis. Mater Horiz 3:91–112
64. Peng K, Fu L, Yang H, Ouyang J (2016) Perovskite LaFeO 3 /montmorillonite nanocomposites: synthesis, interface characteristics and enhanced photocatalytic activity. Sci Rep 6:19723–19733
65. Parida K, Reddy K, Martha S, Das D, Biswal N (2010) Fabrication of nanocrystalline LaFeO 3 : an
efficient sol–gel auto-combustion assisted visible light responsive photocatalyst for water decomposition. Int J Hydrogen Energy 35:12161–12168
66. Sannino D, Vaiano V, Ciambelli P, Isupova LA (2011) Structured catalysts for photo-Fenton oxidation of acetic acid. Catal Today 161:255–259
67. Vaiano V, Iervolino G, Sannino D, Rizzo L, Sarno G, Ciambelli P et al (2015) Food Azo-Dyes
removal from water by heterogeneous photo-fenton with LaFeO 3 supported on honeycomb corundum monoliths. J Environ Eng 141(12):04015038
68. Sannino D, Vaiano V, Ciambelli P, Isupova L (2013) Mathematical modelling of the heterogeneous
photo-Fenton oxidation of acetic acid on structured catalysts. Chem Eng J 224:53–58
69. Suslick KS, Price GJ (1999) Applications of ultrasound to materials chemistry. Annu Rev Mater
Sci 29:295–326
70. Xu H, Zeiger BW, Suslick KS (2013) Sonochemical synthesis of nanomaterials. Chem Soc Rev
42:2555–2567
71. Teh CY, Wu TY, Juan JC (2017) An application of ultrasound technology in synthesis of titaniabased photocatalyst for degrading pollutant. Chem Eng J 317:586–612
72. Moholkar VS, Sivasankar T, Nalajala VS (2012) 20 Mechanistic aspects of ultrasound-enhanced
physical and chemical processes. In: Handbook on applications of, pp 501–531
73. Sancheti SV, Gogate PR (2017) A review of engineering aspects of intensification of chemical synthesis using ultrasound. Ultrason Sonochem 36:527–543
74. Huang W, Tang X, Wang Y, Koltypin Y, Gedanken A (2000) Selective synthesis of anatase and
rutile via ultrasound irradiation. Chem Commun 15(15):1415–1416
75. Jimmy CY, Zhang L, Yu J (2002) Rapid synthesis of mesoporous TiO 2 with high photocatalytic
activity by ultrasound-induced agglomeration. New J Chem 26:416–420
76. Boels L, Wagterveld R, Mayer M, Witkamp G (2010) Seeded calcite sonocrystallization. J Cryst
Growth 312:961–966
77. Tian C, Zhang Q, Wu A, Jiang M, Liang Z, Jiang B et al (2012) Cost-effective large-scale synthesis of ZnO photocatalyst with excellent performance for dye photodegradation. Chem Commun
48:2858–2860
258
Reprinted from the journal
