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

Samriti, Sahil Thakur, Abhijeet Ojha, Rajeev Gupta, M. Bechelany, A. Kuznetsov, H. Swart, Jai Prakash
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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.
作为新型可见光活性光催化剂的氧化石墨烯:合成、氮和硼掺杂改性以及光催化应用
近年来,氧化石墨烯(GO)因其卓越/可调的光电特性、多功能性和生态友好性,已成为新兴的重要唯一光催化纳米材料之一。然而,在调整表面化学性质、定制带隙、开发掺杂策略以及了解唯一光催化机理方面仍存在挑战。本文研究了通过改变氧化剂(K2Cr2O7:KMnO4)的比例,以及氮(N)和硼(B)的掺杂改性,采用改进的 Hummers 法合成 GO,以期将其应用于有机染料污染物的光催化降解。此外,还研究了表面化学、光学、成分、形态和结构特性的变化,以了解光催化机理。合成的 GO 具有较宽的光吸收光谱,其带隙为 2.4-4.3 eV,在阳光直射下对亚甲蓝染料的降解率超过 91%。然而,在掺杂了 N 和 B 后,光催化活性降低了,这归因于含氧官能团的减少、低表面积以及掺杂剂在 GO 结构中引起的键合构型。这项研究为用经济实惠、环保和高效的无金属 GO 光催化剂取代金属半导体光催化剂提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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