Graphene Oxide as Novel Visible Light Active Photocatalyst: Synthesis, Modification by Nitrogen and Boron Doping, and Photocatalytic Application

Author:

Samriti 1,Thakur Sahil1,Ojha Abhijeet2,Gupta Rajeev3,Bechelany Mikhael45,Kuznetsov A.Yu.6,Swart Hendrik C.7,Prakash Jai1ORCID

Affiliation:

1. Department of Chemistry National Institute of Technology Hamirpur Hamirpur 177005 India

2. Department of Materials Science and Engineering National Institute of Technology Hamirpur Hamirpur 177005 India

3. Department of Physics School of Engineering Studies University of Petroleum & Energy Studies Dehradun Uttarakhand 248007 India

4. Institut Européen des Membranes IEM UMR‐5635 University Montpellier ENSCM CNRS Place Eugene Bataillon 34095 Montpellier France

5. Gulf University for Science and Technology, GUST Mubarak Al‐Abdullah 32093 Kuwait

6. Department of Physics and Centre for Materials Science and Nanotechnology University of Oslo Oslo N‐0316 Norway

7. Department of Physics University of the Free State Bloemfontein 9301 Republic of South Africa

Abstract

Graphene oxide (GO) has become one of the emerging and important sole photocatalyst nanomaterials in recent years due to its exceptional/tunable optoelectronic properties, multifunctionality, and eco‐friendly nature. However, challenges remain in tuning surface chemistry, tailoring the band gap, developing doping strategies, and understanding the sole photocatalytic mechanism. This contribution investigated the synthesis of GO via the improved Hummers method by varying the ratio of the oxidizing agents (K2Cr2O7:KMnO4), as well as modifications by nitrogen (N) and boron (B) doping in view of its applications in photocatalytic degradation of organic dye pollutants. Furthermore, changes in surface chemistry, optical, compositional, morphological, and structural properties are investigated to understand the photocatalytic mechanism. The synthesized GO showed a broad spectrum of light absorption with a tunable band gap of 2.4–4.3 eV and exhibited more than 91% degradation of methylene blue dye under direct sunlight. However, the photocatalytic activity decreased after N and B doping attributed to reduced oxygen‐containing functional groups, low surface area, and dopants‐induced bonding configurations within the GO structure. This study provides a new insight into replacing metallic semiconductor photocatalysts with highly affordable, environmentally friendly, and potent metal‐free GO photocatalysts.

Funder

Department of Science and Technology, Republic of South Africa

Publisher

Wiley

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