Ahmad Haseeb, Rauf Ali, Ahmad Afaq, Ulhaq Ata, Muhammad Shoaib
Department of Physics, Lahore University of Management Sciences Lahore Pakistan.
Department of Chemistry and Chemical Engineering, Lahore University of Management Sciences Lahore Pakistan
RSC Adv. 2021 Sep 30;11(51):32330-32338. doi: 10.1039/d1ra03784f. eCollection 2021 Sep 27.
Photocatalytic materials attract continued scientific interest due to their possible application in energy harvesting. These applications critically rely on efficient photon absorption and exciton physics, which are governed by the underlying electronic structure. We report the electronic properties and optical response of the BiWO bulk photocatalyst using first-principle methods. The density functional theory DFT-computed electronic band gap is corrected by including Hubbard potentials for W-5d and O-2p orbitals, and one of the most advanced methods, Quasi-Particle (QP) GW at different levels, with semi-core states of Bi (5s and 5p) and W (4f), carefully taken into account in GW calculations. The perplexing nature of band character of BiWO is examined, and it comes out to be direct at PBE level without SOC. However, it shows indirect nature at GW level or when Spin-Orbit Coupling (SOC) is turned on even at PBE level. The optical response of the material system is computed within independent-particle approximation (IPA), taking into account local field effects and employing the time-dependent DFT (TDDFT) method. Bethe-Salpeter equation (BSE) is used to capture the excitonic effect, and the results of these approximations are compared with the experimental data. Our first-principle calculations results indicate that electron-hole interaction significantly modifies optical absorption of BiWO, thereby verifying the reported experimental observations.
由于光催化材料在能量收集方面的潜在应用,它们一直吸引着科学界的关注。这些应用严重依赖于有效的光子吸收和激子物理,而这两者都由其底层电子结构所决定。我们使用第一性原理方法报告了BiWO体相光催化剂的电子性质和光学响应。通过包含W-5d和O-2p轨道的哈伯德势来校正密度泛函理论(DFT)计算的电子带隙,并且在GW计算中仔细考虑了Bi(5s和5p)和W(4f)的半芯态,采用了不同水平的最先进方法之一——准粒子(QP)GW。研究了BiWO能带特征的复杂性质,结果表明在不考虑自旋轨道耦合(SOC)的PBE水平下它是直接带隙。然而,在GW水平或即使在PBE水平开启自旋轨道耦合(SOC)时,它表现出间接带隙性质。在独立粒子近似(IPA)内计算材料体系的光学响应,考虑局部场效应并采用含时密度泛函理论(TDDFT)方法。使用贝塞耳-萨尔皮特方程(BSE)来捕捉激子效应,并将这些近似结果与实验数据进行比较。我们的第一性原理计算结果表明,电子-空穴相互作用显著改变了BiWO的光吸收,从而验证了已报道的实验观察结果。