Suppr超能文献

晶型结构与组成对 Ta-O-N 功能材料光催化性能的影响。

Effects of crystal structure and composition on the photocatalytic performance of Ta-O-N functional materials.

机构信息

Faculty of Materials Science and Engineering, Kunming University of Science and Technology, Kunming 650093, P. R. China.

出版信息

Phys Chem Chem Phys. 2018 May 7;20(17):12005-12015. doi: 10.1039/c8cp00432c. Epub 2018 Apr 19.

Abstract

For photocatalytic applications, the response of a material to the solar spectrum and its redox capabilities are two important factors determined by the band gap and band edge position of the electronic structure of the material. The crystal structure and composition of the photocatalyst are fundamental for determining the above factors. In this article, we examine the functional material Ta-O-N as an example of how to discuss relationships among these factors in detail with the use of theoretical calculations. To explore how the crystal structure and composition influence the photocatalytic performance, two groups of Ta-O-N materials were considered: the first group included ε-TaO, TaON, and TaN; the second group included β-TaO, δ-TaO, ε-TaO, and amorphous-TaO. Calculation results indicated that the band gap and band edge position are determined by interactions between the atomic core and valence electrons, the overlap of valence electronic states, and the localization of valence states. TaN and TaON are suitable candidates for efficient photocatalysts owing to their photocatalytic water-splitting ability and good utilization efficiency of solar energy. δ-TaO has a strong oxidation potential and a band gap suitable for absorbing visible light. Thus, it can be applied to photocatalytic degradation of most pollutants. Although a-TaO, ε-TaO, and β-TaO cannot be directly used as photocatalysts, they can still be applied to modify conventional Ta-O-N photocatalysts, owing to their similar composition and structure. These calculation results will be helpful as reference data for analyzing the photocatalytic performance of more complicated Ta-O-N functional materials. On the basis of these findings, one could design novel Ta-O-N functional materials for specific photocatalytic applications by tuning the composition and crystal structure.

摘要

对于光催化应用,材料对太阳光谱的响应及其氧化还原能力是由材料的电子结构的带隙和能带边缘位置决定的两个重要因素。光催化剂的晶体结构和组成对于确定上述因素至关重要。在本文中,我们以 Ta-O-N 功能材料为例,通过理论计算详细探讨了这些因素之间的关系。为了探索晶体结构和组成如何影响光催化性能,我们考虑了两组 Ta-O-N 材料:第一组包括 ε-TaO、TaON 和 TaN;第二组包括 β-TaO、δ-TaO、ε-TaO 和非晶态-TaO。计算结果表明,带隙和能带边缘位置由原子核与价电子之间的相互作用、价电子态的重叠以及价电子态的局域化决定。TaN 和 TaON 由于其光解水能力和对太阳能的高效利用,是高效光催化剂的候选材料。δ-TaO 具有较强的氧化电位和适合吸收可见光的带隙,因此可应用于大多数污染物的光催化降解。虽然 α-TaO、ε-TaO 和 β-TaO 不能直接用作光催化剂,但由于它们具有相似的组成和结构,仍可用于修饰传统的 Ta-O-N 光催化剂。这些计算结果将有助于分析更复杂的 Ta-O-N 功能材料的光催化性能提供参考数据。在此基础上,可以通过调整组成和晶体结构来设计用于特定光催化应用的新型 Ta-O-N 功能材料。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验