Huang Hai-Cai, Yang Chuan-Lu, Wang Mei-Shan, Ma Xiao-Guang, Yi You-Gen
School of Physics and Optoelectronics Engineering, Ludong University Yantai 26425 People's Republic of China
Hunan Key Laboratory for High-Microstructure and Ultrafast Process, College of Physics and Electronics, Central South University Changsha 410083 People's Republic of China.
RSC Adv. 2018 Sep 18;8(56):32317-32324. doi: 10.1039/c8ra04569k. eCollection 2018 Sep 12.
Band gap engineering can efficiently improve the photocatalytic activity of semiconductors for hydrogen generation from water splitting. Herein, we present a comprehensive investigation on the geometrical structures, electronic, optical, and potential photocatalytic properties and charge carrier mobility of pristine and group-IVA element-doped SrInO using first-principles density functional theory with the meta-GGA+MBJ potential. The calculated formation energies are moderate, indicating that the synthesis of the doped structures is experimentally feasible. In addition, the energy band gaps of the group-IVA element-doped SrInO range from 1.67 to 3.07 eV, which satisfy the requirements for photocatalytic water splitting, except for that of the Si mono-doped structure. Based on the deformation potential theory, a high charge carrier mobility of 2093 cm V s is obtained for the pristine SrInO and those of the doped-structures are also large, although a decrease in the values of some are observed. The optical absorption coefficient of the doped structures in the near ultraviolet (UV) and visible light range significantly increases. Therefore, group-IVA element-doped SrInO are potential candidates as photocatalysts for hydrogen generation from water splitting driven by visible light.
带隙工程可以有效地提高半导体用于光催化水分解制氢的活性。在此,我们使用具有元广义梯度近似加准粒子自洽GW近似(meta-GGA+MBJ)势的第一性原理密度泛函理论,对原始的和IVA族元素掺杂的SrInO的几何结构、电子、光学和潜在的光催化性能以及电荷载流子迁移率进行了全面研究。计算得到的形成能适中,表明掺杂结构的合成在实验上是可行的。此外,IVA族元素掺杂的SrInO的能带隙在1.67至3.07 eV范围内,除了单硅掺杂结构外,均满足光催化水分解的要求。基于形变势理论,原始的SrInO的电荷载流子迁移率高达2093 cm² V⁻¹ s⁻¹,掺杂结构的迁移率也很大,尽管部分数值有所下降。掺杂结构在近紫外(UV)和可见光范围内的光吸收系数显著增加。因此,IVA族元素掺杂的SrInO是可见光驱动光催化水分解制氢的潜在候选光催化剂。