Pan Haijun, Meng Xiangying, Liu Dongyan, Li Song, Qin Gaowu
Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education), Northeastern University, Shenyang 110819, People's Republic of China.
Phys Chem Chem Phys. 2015 Sep 14;17(34):22179-86. doi: 10.1039/c5cp01489a. Epub 2015 Aug 4.
In this theoretical study, first-principles calculations were carried out to explore the photocatalytic activity of cation (Ti or Zr) and anion (N) compensated codoped hematite based on density functional theory (DFT). For (Ti/Zr,N) codoped hematite, the band edges of the conduction band and the valence band move close to each other, leading to an obvious bandgap reduction. Compared with the pure hematite, the optical absorption coefficient of codoped hematite is significantly enhanced in the visible light region. The charge distribution at the conduction band minimum (CBM) and valence band maximum (VBM) is spatially separated after codoping, which is beneficial for extending the carrier lifetime. More interestingly, the CBM becomes electronically delocalized in (Ti,N) doped hematite, which indicates better carrier transport properties in the bulk system. Due to these special features of (Ti/Zr,N) codoped hematite, an improved photocatalytic performance can be expected.
在这项理论研究中,基于密度泛函理论(DFT)进行了第一性原理计算,以探索阳离子(Ti或Zr)和阴离子(N)补偿共掺杂赤铁矿的光催化活性。对于(Ti/Zr,N)共掺杂赤铁矿,导带和价带的带边相互靠近,导致明显的带隙减小。与纯赤铁矿相比,共掺杂赤铁矿在可见光区域的光吸收系数显著增强。共掺杂后,导带最小值(CBM)和价带最大值(VBM)处的电荷分布在空间上分离,这有利于延长载流子寿命。更有趣的是,在(Ti,N)掺杂赤铁矿中,CBM在电子上变得离域,这表明在体系统中有更好的载流子传输特性。由于(Ti/Zr,N)共掺杂赤铁矿的这些特殊特性,可以预期其光催化性能会得到改善。