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石墨相氮化碳“再加载”:(光)催化以外的新兴应用。

Graphitic carbon nitride "reloaded": emerging applications beyond (photo)catalysis.

机构信息

Department of Colloid Chemistry, Max Planck Institute of Colloids and Interfaces, 14424 Potsdam, Germany.

出版信息

Chem Soc Rev. 2016 Apr 21;45(8):2308-26. doi: 10.1039/c5cs00767d. Epub 2016 Feb 11.

Abstract

Despite being one of the oldest materials described in the chemical literature, graphitic carbon nitride (g-C3N4) has just recently experienced a renaissance as a highly active photocatalyst, and the metal-free polymer was shown to be able to generate hydrogen under visible light. The semiconductor nature of g-C3N4 has triggered tremendous endeavors on its structural manipulation for enhanced photo(electro)chemical performance, aiming at an affordable clean energy future. While pursuing the stem of g-C3N4 related catalysis (photocatalysis, electrocatalysis and photoelectrocatalysis), a number of emerging intrinsic properties of g-C3N4 are certainly interesting, but less well covered, and we believe that these novel applications outside of conventional catalysis can be favorably exploited as well. Thanks to the general efforts devoted to the exploration and enrichment of g-C3N4 based chemistry, the boundaries of this area have been possibly pushed far beyond what people could imagine in the beginning. This review strives to cover the achievements of g-C3N4 related materials in these unconventional application fields for depicting the broader future of these metal-free and fully stable semiconductors. This review starts with the general protocols to engineer g-C3N4 micro/nanostructures for practical use, and then discusses the newly disclosed applications in sensing, bioimaging, novel solar energy exploitation including photocatalytic coenzyme regeneration, templating, and carbon nitride based devices. Finally, we attempt an outlook on possible further developments in g-C3N4 based research.

摘要

尽管石墨相氮化碳(g-C3N4)是化学文献中最早描述的材料之一,但最近它才重新焕发生机,成为一种高效的光催化剂,并且这种无金属的聚合物被证明能够在可见光下产生氢气。g-C3N4 的半导体性质引发了人们对其结构进行操控以提高光电化学性能的巨大努力,旨在实现负担得起的清洁能源未来。在追求 g-C3N4 相关催化(光催化、电催化和光电催化)的根源的同时,g-C3N4 的一些新兴内在特性当然很有趣,但却较少被涉及,我们相信这些传统催化之外的新型应用也可以得到很好的利用。由于人们致力于探索和丰富基于 g-C3N4 的化学,这个领域的边界可能已经远远超出了人们最初的想象。这篇综述旨在涵盖 g-C3N4 相关材料在这些非常规应用领域的成就,以描绘这些无金属和完全稳定的半导体的更广阔的未来。这篇综述首先介绍了用于实际应用的 g-C3N4 微纳结构的一般构建方案,然后讨论了在传感、生物成像、新型太阳能利用(包括光催化辅酶再生、模板和基于氮化碳的器件)方面的新披露应用。最后,我们尝试对基于 g-C3N4 的研究的可能进一步发展进行展望。

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