Lin Lihua, Wang Chong, Ren Wei, Ou Honghui, Zhang Yongfan, Wang Xinchen
State Key Laboratory of Photocatalysis on Energy and Environment , College of Chemistry , Fuzhou University , Fuzhou , Fujian 350002 , P. R. China . Email:
Chem Sci. 2017 Aug 1;8(8):5506-5511. doi: 10.1039/c7sc00900c. Epub 2017 May 30.
Photocatalytic water splitting is an ideal pathway to produce hydrogen for the future energy supply due to the sustainability of solar energy and the mild reaction conditions. In the past four decades, many inorganic semiconductor photocatalysts have been studied for this purpose. In recent years, conjugated polymers, in particular covalent carbon nitride frameworks, have rapidly emerged as a new family of photocatalysts. However, the use of conjugated photocatalysts in overall water splitting in the absence of sacrificial agents has been much less reported. Herein, we used surface kinetic control to photocatalyze overall water splitting by a covalent carbon nitride semiconductor with a crystalline poly(triazine imide) (PTI) frameworks. Our study demonstrates that the loading of a Pt co-catalyst on the PTI surface plays the key role in inducing overall water splitting. The co-deposition of a cobalt species can effectively increase the photocatalytic activity and adjust the ratio of H and O produced, as well as enhancing the stability of the photocatalyst. The optimal sample with the dual co-catalysts shows an apparent quantum yield of 2.1% for the overall water splitting reaction.
由于太阳能的可持续性和温和的反应条件,光催化水分解是未来能源供应中生产氢气的理想途径。在过去的四十年里,许多无机半导体光催化剂已为此目的进行了研究。近年来,共轭聚合物,特别是共价氮化碳框架,已迅速成为一类新型光催化剂。然而,在没有牺牲剂的情况下,共轭光催化剂用于全分解水的报道要少得多。在此,我们利用表面动力学控制,通过具有结晶聚(三嗪酰亚胺)(PTI)框架的共价氮化碳半导体光催化全分解水。我们的研究表明,在PTI表面负载铂助催化剂在诱导全分解水中起关键作用。钴物种的共沉积可以有效地提高光催化活性,调节氢气和氧气的生成比例,同时增强光催化剂的稳定性。具有双助催化剂的最佳样品在全分解水反应中的表观量子产率为2.1%。