School of Energy and Chemical Engineering, Xiamen University Malaysia, Selangor, Darul Ehsan, 43900, Malaysia.
Center of Excellence for NaNo Energy & Catalysis Technology (CONNECT), Xiamen University Malaysia, Selangor, Darul Ehsan, 43900, Malaysia.
Small. 2021 Dec;17(48):e2006851. doi: 10.1002/smll.202006851. Epub 2021 Apr 28.
Graphitic carbon nitride (g-C N ) is a kind of ideal metal-free photocatalysts for artificial photosynthesis. At present, pristine g-C N suffers from small specific surface area, poor light absorption at longer wavelengths, low charge migration rate, and a high recombination rate of photogenerated electron-hole pairs, which significantly limit its performance. Among a myriad of modification strategies, point-defect engineering, namely tunable vacancies and dopant introduction, is capable of harnessing the superb structural, textural, optical, and electronic properties of g-C N to acquire an ameliorated photocatalytic activity. In view of the burgeoning development in this pacey field, a timely review on the state-of-the-art advancement of point-defect engineering of g-C N is of vital significance to advance the solar energy conversion. Particularly, insights into the intriguing roles of point defects, the synthesis, characterizations, and the systematic control of point defects, as well as the versatile application of defective g-C N -based nanomaterials toward photocatalytic water splitting, carbon dioxide reduction and nitrogen fixation will be presented in detail. Lastly, this review will conclude with a balanced perspective on the technical and scientific hindrances and future prospects. Overall, it is envisioned that this review will open a new frontier to uncover novel functionalities of defective g-C N -based nanostructures in energy catalysis.
石墨相氮化碳(g-C N )是一种理想的用于人工光合作用的无金属光催化剂。目前,原始的 g-C N 存在比表面积小、对长波长光的吸收差、电荷迁移率低以及光生电子-空穴对复合率高的问题,这极大地限制了其性能。在众多的改性策略中,点缺陷工程,即可调空位和掺杂引入,能够利用 g-C N 的优异结构、织构、光学和电子性能,获得改良的光催化活性。鉴于该领域的飞速发展,及时回顾 g-C N 的点缺陷工程的最新进展对于推进太阳能转化具有重要意义。特别是,本文详细介绍了点缺陷的有趣作用、合成、表征以及点缺陷的系统控制,以及基于缺陷 g-C N 的纳米材料在光催化水分解、二氧化碳还原和固氮方面的多种应用。最后,本文将从技术和科学障碍以及未来展望的角度来平衡地看待这个问题。总的来说,预计这篇综述将为揭示基于缺陷 g-C N 的纳米结构在能源催化中的新功能开辟一个新的前沿。