Multi-objective-Global-Optimization-Approach Predicted Quasi-Layered Ternary TiOS Crystals with Promising Photocatalytic Properties

Yi-Jie Xiang, Siyan Gao, Chunlei Wang, Haiping Fang, Xiangmei Duan, Yi-Feng Zheng, Yue-Yu Zhang
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Abstract

Titanium dioxide (TiO2) has attracted considerable research attentions for its promising applications in solar cells and photocatalytic devices. However, the intrinsic challenge lies in the relatively low energy conversion efficiency of TiO2, primarily attributed to the substantial band gaps (exceeding 3.0 eV) associated with its rutile and anatase phases. Leveraging multi-objective global optimization, we have identified two quasi-layered ternary Ti-O-S crystals, composed of titanium, oxygen and sulfur. The calculations of formation energy, phonon dispersions, and thermal stability confirm the chemical, dynamical and thermal stability of these newly discovered phases. Employing the state-of-art hybrid density functional approach and many-body perturbation theory (quasiparticle GW approach and Bethe-Salpeter equation), we calculate the optical properties of both the TiOS phases. Significantly, both phases show favorable photocatalytic characteristics, featuring band gaps suitable for visible optical absorption and appropriate band alignments with water for effective charge carrier separation. Therefore, ternary compound TiOS hold the potential for achieving high-efficiency photochemical conversion, showing our multi-objective global optimization provides a new approach for novel environmental and energy materials design with multicomponent compounds.
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多目标全局优化方法预测出具有良好光催化性能的准层状三元 TiOS 晶体
二氧化钛(TiO2)在太阳能电池和光催化设备中的应用前景广阔,因此吸引了大量研究人员的关注。然而,其固有的挑战在于二氧化钛的能量转换效率相对较低,这主要归因于其金红石相和锐钛相具有较大的带隙(超过 3.0 eV)。利用多目标全局优化,我们确定了两种由钛、氧和硫组成的准层状三元钛-氧-硫晶体。对形成能、声子色散和热稳定性的计算证实了这些新发现相的化学、动力学和热稳定性。利用最先进的混合密度泛函方法和多体扰动理论(准粒子 GW 方法和 Bethe-Salpeter 方程),我们计算了这两种 TiOS 相的光学特性。值得注意的是,这两种相都显示出良好的光催化特性,具有适合可见光吸收的带隙,以及与水适当的带排列,可有效分离电荷载流子。因此,三元化合物 TiOS 具有实现高效光化学转换的潜力,这表明我们的多目标全局优化为使用多组分化合物设计新型环境和能源材料提供了一种新方法。
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