One-pot biosynthesis of SnO2 quantum dots mediated by Clitoria ternatea flower extract for photocatalytic degradation of rhodamine B
Author:
Publisher
Elsevier BV
Subject
Process Chemistry and Technology,Pollution,Waste Management and Disposal,Chemical Engineering (miscellaneous)
Reference51 articles.
1. A green and novel approach for the synthesis of SnO2 nanoparticles and its exploitation as a catalyst in the degradation of methylene blue under solar radiation;Bhattacharjee;Mater. Lett.,2015
2. Efficient combined sorption/photobleaching of dyes promoted by cellulose/titania-based nanocomposite films;Ríos-Gómez;J. Cleaner Prod.,2018
3. One-step biosynthesis of hybrid reduced graphene oxide/iron-based nanoparticles by eucalyptus extract and its removal of dye;Weng;J. Cleaner Prod.,2018
4. Photoremediation of toxic dye from aqueous environment using monometallic and bimetallic quantum dots based nanocomposites;Sharma;J. Cleaner Prod.,2018
5. Metal oxides as photocatalysts;Khan;J. Saudi Chem. Soc.,2015
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