Phenol and Cr(vi) degradation with Mn ion doped ZnO under visible light photocatalysis
Author:
Affiliation:
1. Indian Institute of Technology (IIT)
2. Hyderabad
3. India-502285
4. Indian Institute of Chemical Technology (IICT)
5. India-500007
6. Defence Metallurgical Research Laboratory
7. DRDO
8. India-500058
Abstract
Mn ion doped ZnO with different percentages of Mn content (Zn0.9Mn0.1O (1), Zn0.8Mn0.2O (2), Zn0.7Mn0.3O (3), and Zn0.6Mn0.4O (4)) was synthesized via a solution combustion method, with urea used as the fuel.
Funder
Ministry of Human Resources Development
Publisher
Royal Society of Chemistry (RSC)
Subject
General Chemical Engineering,General Chemistry
Link
http://pubs.rsc.org/en/content/articlepdf/2017/RA/C7RA08172C
Reference41 articles.
1. Degradation of phenol by nanomaterial TiO2 in wastewater
2. Adsorption and Photocatalytic Kinetics of Visible-Light Response N-Doped TiO2Nanocatalyst for Indoor Acetaldehyde Removal under Dark and Light Conditions
3. An overview on visible light responsive metal oxide based photocatalysts for hydrogen energy production
4. World Health Organization , Phenol: Environmental Health Criteria 161, 1994
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