Please use this identifier to cite or link to this item: https://doi.org/10.1016/j.ica.2018.11.034
Title: Novel photo-functional material based on homo-metallic cyanide bridged nickel coordination polymer and titania for hydrogen generation
Authors: Ibrahim, Shaista
Majeed, Imran
Hussain, Ejaz
Badshah, Amin
Qian, Yuhong 
Zhao, Dan 
Turner, David R
Nadeem, Muhammad Arif
Keywords: Science & Technology
Physical Sciences
Chemistry, Inorganic & Nuclear
Chemistry
Photocatalytic hydrogen production
Cyanide bridged coordination polymer
Composite
Titanium dioxide
Non-noble metal
METAL-ORGANIC FRAMEWORK
VISIBLE-LIGHT
PHOTOCATALYTIC ACTIVITY
H-2 PRODUCTION
AU/TIO2 PHOTOCATALYSTS
GOLD NANOPARTICLES
MIL-100 FE
WATER
EVOLUTION
TIO2
Issue Date: 24-Feb-2019
Publisher: ELSEVIER
Citation: Ibrahim, Shaista, Majeed, Imran, Hussain, Ejaz, Badshah, Amin, Qian, Yuhong, Zhao, Dan, Turner, David R, Nadeem, Muhammad Arif (2019-02-24). Novel photo-functional material based on homo-metallic cyanide bridged nickel coordination polymer and titania for hydrogen generation. INORGANICA CHIMICA ACTA 486 : 684-693. ScholarBank@NUS Repository. https://doi.org/10.1016/j.ica.2018.11.034
Abstract: © 2018 Elsevier B.V. A new three dimensional (3D) cyanide-bridged homo-metallic coordination polymer [{NiII(4,4′-dipy)4}{Ni(CN)4}]n·(4,4′-dipy)·3H2O·C2H6O2 (1) (4,4′-dipy = 1,3-di(4-pyridyl)propane) has been functionalized by making its composite with P25 (titanium dioxide) for photocatalytic hydrogen production from water. 1/TiO2 composite manifests appreciable hydrogen production in contrast with the virgin compounds 1 and P25, accentuating that the photocatalytic activity greatly corresponds to the well separation of photo generated charge carriers. Different wt% (2.5%, 5%, 7% and 10%) of 1 in 1/TiO2 composites were assessed for photocatalytic activity in 5 vol% glycerol water mixture. The 5 wt% 1/TiO2 composite showed the maximum hydrogen production of 11.2 mmol h−1 g−1. The veiled mechanism is revealed on the basis of results obtained by cyclic voltammetry, photoluminescence and diffused reflectance UV–visible studies. The key step in proposed mechanism is the transfer of electrons from conduction band of TiO2 to compound 1. Compound 1 not only quenches the conduction band electrons of titania but also acts as a co-catalyst to reduce the protons into hydrogen. This outcome is envisaged to manage the future advancement of proficient, inexpensive semiconductor photocatalysts for solar Hydrogen production.
Source Title: INORGANICA CHIMICA ACTA
URI: https://scholarbank.nus.edu.sg/handle/10635/169565
ISSN: 00201693
18733255
DOI: 10.1016/j.ica.2018.11.034
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