Published July 2018 | Version v1
Journal article

ZnO-graphene quantum dots heterojunctions for natural sunlight-driven photocatalytic environmental remediation

  • 1. School of Basic Sciences and Advanced Materials Research Center, Indian Institute of Technology Mandi, Kamand, Mandi 175005, Himachal Pradesh (India)
  • 2. Multi-functional Photocatalyst & Coatings Lab, SPECIFIC, College of Engineering, Swansea University (Bay Campus), Swansea SA1 8EN, Wales (United Kingdom)

Description

Highlights: • Heterojunctions with ZnO nanorods decorated with GQD were prepared by facile hydrothermal method. • ZnO with 2 wt% of GQD exhibits highest photocatalytic activity for removal of pollutants. • Enhanced light absorption and efficient separation of photoinduced charge carriers boosts the photoactivity. • Plausible mechanism for superior photocatalytic activity has been proposed based on the investigations. In this work, we report the formation of heterojunctions comprising of graphene quantum dots (GQD) decorated ZnO nanorods (NR) and its use as efficient photocatalysts for environmental remediation. The heterojunctions has been designed to be active both in the UV and visible light regions and anticipated utilize the maximum part of the solar light spectrum. In this view, we examined the photocatalytic performance of our heterojunctions towards the degradation of colored pollutant (methylene blue (MB) dye) and a colorless pollutant (carbendazim (CZ) fungicide) under sunlight irradiation. Compared to bare photocatalyst ZnO and GQD, the heterojunction with 2 wt% of GQD (ZGQD2) showed the best photocatalytic activity by effectively degrading (about 95%) of organic pollutants (MB and CZ) from water within a short span of 70 min. The superior photocatalytic activity of these ZnO-GQD heterojunctions could be attributed to efficient charge carrier separation lead suppressed recombination rate at photocatalyst interfaces. In addition to the enhanced light absorption from UV to visible region, the high specific surface area of ZGQD2 heterojunction (353.447 m2 g−1) also imparts strong adsorption capacity for pollutants over catalyst surface, resulting in high photoactivity. Based on the obtained results, band gap alignment at ZnO-GQD heterojunction and active species trapping experiments, a plausible mechanism is proposed for photocatalytic reaction. The excellent photostability and recyclability of the ZnO-GQD heterojunctions fostering as promising photocatalyst candidate for environmental remediation applications.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.apsusc.2018.04.045

Additional details

Identifiers

DOI
10.1016/j.apsusc.2018.04.045;
PII
S0169433218310006;

Publishing Information

Journal Title
Applied Surface Science
Journal Volume
447
Journal Page Range
p. 802-815
ISSN
0169-4332
CODEN
ASUSEE

Optional Information

Copyright
Copyright (c) 2018 Elsevier B.V. All rights reserved.