1 3
Topics in Current Chemistry (2020) 378:7
168. Janczukowicz W, Zieliński M, Dębowski M (2008) Biodegradability evaluation of dairy effluents
originated in selected sections of dairy production. Biores Technol 99:4199–4205
169. Murcia JJ, Hernández-Laverde M, Rojas H, Muñoz E, Navío JA, Hidalgo MC (2018) Study of the
effectiveness of the flocculation-photocatalysis in the treatment of wastewater coming from dairy
industries. J Photochem Photobiol A 358:256–264
170. Lamas Samanamud GR, Loures CCA, Souza AL, Salazar RFS, Oliveira IS, Silva MB et al (2012)
Heterogeneous photocatalytic degradation of dairy wastewater using immobilized ZnO. ISRN
Chemical Engineering. 2012:1–8
171. Lucchetti R, Siciliano A, Clarizia L, Russo D, Di Somma I, Natale F et al (2017) Sacrificial photocatalysis: removal of nitrate and hydrogen production by nano-copper-loaded P25 titania. A kinetic
and ecotoxicological assessment. Environ Sci Pollut Res 24:5898–5907
172. Li Y, Wang L, Cai T, Zhang S, Liu Y, Song Y et  al (2017) Glucose-assisted synthesize 1D/2D
nearly vertical CdS/MoS 2 heterostructures for efficient photocatalytic hydrogen evolution. Chem
Eng J 321:366–374
173. Wang X, Dong H, Hu Z, Qi Z, Li L (2017) Fabrication of a Cu 2 O/Au/TiO 2 composite film for efficient photocatalytic hydrogen production from aqueous solution of methanol and glucose. Mater
Sci Eng, B 219:10–19
174. Speltini A, Scalabrini A, Maraschi F, Sturini M, Pisanu A, Malavasi L et al (2018) Improved photocatalytic H2 production assisted by aqueous glucose biomass by oxidized g-C3N4. Int J Hydrogen Energy 43:14925–14933
175. Iervolino G, Vaiano V, Sannino D, Rizzo L, Galluzzi A, Polichetti M, et al (2018) Hydrogen production from glucose degradation in water and wastewater treated by Ru-LaFeO 3 /Fe 2 O 3 magnetic
particles photocatalysis and heterogeneous photo-Fenton 43:2184–2196
176. Tijare SN, Bakardjieva S, Subrt J, Joshi MV, Rayalu SS, Hishita S et al (2014) Synthesis and visible light photocatalytic activity of nanocrystalline PrFeO3perovskite for hydrogen generation in
ethanol–water system. J Chem Sci 126:517–525
177. Caravaca A, Jones W, Hardacre C, Bowker M (2016) H(2) production by the photocatalytic
reforming of cellulose and raw biomass using Ni, Pd, Pt and Au on titania. Proc Math Phys Eng Sci
472:20160054–20160075
178. Vaiano V, Iervolino G, Sarno G, Sannino D, Rizzo L, Murcia Mesa JJ et al (2015) Simultaneous
production of CH4 and H2 from photocatalytic reforming of glucose aqueous solution on sulfated
Pd-TiO 2 catalysts. Oil Gas Sci Technol 70:891–902
179. Saxena G, Chandra R, Bharagava RN (2017) Environmental Pollution, Toxicity Profile and Treatment Approaches for Tannery Wastewater and Its Chemical Pollutants. Rev Environ Contam Toxicol 240:31–69
180. Dixit S, Yadav A, Dwivedi PD, Das M (2015) Toxic hazards of leather industry and technologies
to combat threat: a review. J Clean Prod 87:39–49
181. Antonopoulou M, Chondrodimou I, Bairamis F, Giannakas A, Konstantinou I (2017) Photocatalytic reduction of Cr(VI) by char/TiO2 composite photocatalyst: optimization and modeling using
the response surface methodology (RSM). Environ Sci Pollut Res 24:1063–1072
182. Shet A, Shetty KV (2016) Photocatalytic degradation of phenol using Ag core-TiO 2 shell (Ag@
TiO 2 ) nanoparticles under UV light irradiation. Environ Sci Pollut Res 23:20055–20064
183. Vaiano V, Iervolino G (2018) Facile method to immobilize ZnO particles on glass spheres for the
photocatalytic treatment of tannery wastewater. J Colloid Interface Sci 518:192–199
184. Caracciolo D, Vaiano V, Matarangolo M, Sacco O, Sannino D, Gambicorti T et al (2017) Treatment of dyeing and finishing waters using innovative photocatalysts. Chem Eng Trans 60:187–192
185. High-level expert group on key enabling technologies—final report”. 2011. Retrieved October
2017:1–56
Publisher’s Note Springer Nature remains neutral with regard to jurisdictional claims in published
maps and institutional affiliations.
263
Reprinted from the journal
Précédent

- 269/307

Suivant