» Articles » PMID: 35566275

Visible Light Reductive Photocatalysis of Azo-Dyes with N-n Junctions Based on Chemically Deposited CdS

Overview
Journal Molecules
Publisher MDPI
Specialty Biology
Date 2022 May 14
PMID 35566275
Authors
Affiliations
Soon will be listed here.
Abstract

New composite photocatalysts have been obtained by chemical bath deposition of CdS on top of either nanostructured crystalline ZrO or TiO films previously deposited on conductive glass FTO. Their morphological, photoelectrochemical and photochemical properties have been investigated and compared. Time resolved spectroscopic, techniques show that in FTO/TiO/CdS films the radiative recombination of charges, separated by visible illumination of CdS, is faster than in FTO/ZrO/CdS, evidencing that carrier dynamics in the two systems is different. Photoelectrochemical investigation evidence a suppression of electron collection in ZrO/CdS network, whereas electron injection from CdS to TiO is very efficient since trap states of TiO act as a reservoir for long lived electrons storage. This ability of FTO/TiO/CdS films is used in the reductive cleavage of N=N bonds of some azo-dyes by visible light irradiation, with formation and accumulation of reduced aminic intermediates, identified by ESI-MS analysis. Needed protons are provided by sodium formate, a good hole scavenger that leaves no residue upon oxidation. FTO/TiO/CdS has an approximately 100 meV driving force larger than FTO/ZrO/CdS under illumination for azo-dye reduction and it is always about 10% more active than the seconds. The films showed very high stability and recyclability, ease of handling and recovering.

Citing Articles

Therapeutic Applications of Azo Dye Reduction: Insights From Methyl Orange Degradation for Biomedical Innovations.

Qausain S, Basheeruddin M Cureus. 2024; 16(9):e69952.

PMID: 39445263 PMC: 11496386. DOI: 10.7759/cureus.69952.


CdS-Based Hydrothermal Photocatalysts for Complete Reductive Dehalogenation of a Chlorinated Propionic Acid in Water by Visible Light.

Milani M, Mazzanti M, Stevanin C, Chenet T, Magnacca G, Pasti L Nanomaterials (Basel). 2024; 14(7).

PMID: 38607114 PMC: 11013931. DOI: 10.3390/nano14070579.


A Novel Hydrothermal CdS with Enhanced Photocatalytic Activity and Photostability for Visible Light Hydrogenation of Azo Bond: Synthesis and Characterization.

Milani M, Mazzanti M, Magnacca G, Caramori S, Molinari A Nanomaterials (Basel). 2023; 13(3).

PMID: 36770375 PMC: 9921911. DOI: 10.3390/nano13030413.


Advances in Hybrid Composites for Photocatalytic Applications: A Review.

Porcu S, Secci F, Ricci P Molecules. 2022; 27(20).

PMID: 36296421 PMC: 9607189. DOI: 10.3390/molecules27206828.

References
1.
Di Carlo G, Caramori S, Trifiletti V, Giannuzzi R, De Marco L, Pizzotti M . Influence of porphyrinic structure on electron transfer processes at the electrolyte/dye/TiO₂ interface in PSSCs: a comparison between meso push-pull and β-pyrrolic architectures. ACS Appl Mater Interfaces. 2014; 6(18):15841-52. DOI: 10.1021/am503113x. View

2.
Zaban A, Greenshtein M, Bisquert J . Determination of the electron lifetime in nanocrystalline dye solar cells by open-circuit voltage decay measurements. Chemphyschem. 2003; 4(8):859-64. DOI: 10.1002/cphc.200200615. View

3.
Godin R, Durrant J . Dynamics of photoconversion processes: the energetic cost of lifetime gain in photosynthetic and photovoltaic systems. Chem Soc Rev. 2021; 50(23):13372-13409. DOI: 10.1039/d1cs00577d. View

4.
Gao X, Liu X, Zhu Z, Gao Y, Wang Q, Zhu F . Enhanced visible light photocatalytic performance of CdS sensitized TiO nanorod arrays decorated with Au nanoparticles as electron sinks. Sci Rep. 2017; 7(1):973. PMC: 5430509. DOI: 10.1038/s41598-017-01124-5. View

5.
Lizama C, Yeber M, Freer J, Baeza J, Mansilla H . Reactive dyes decolouration by TiO2 photo-assisted catalysis. Water Sci Technol. 2001; 44(5):197-203. View