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Enhancing the Photocatalytic Performance of MXenes via Stoichiometry Engineering of Their Electronic and Optical Properties

机译:通过电子和光学性能的化学计量工程提高MxENES的光催化性能

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Combining both density functional theory and the cluster expansion method, we investigate 3 binary MXene alloy systems of semiconducting Ti2CO2, Zr2CO2, and Hf2CO2, where the transition metals substitute one another (i.e., Ti2(1-x)Zr2xCO2, Ti2(1-x)Hf2xCO2, and Zr2(1-x)Hf2CO2). We show that this group of MXene alloys forms the solid solution phase across all compositions. Special quasirandom structures are generated to model the solid-solution phase of these alloys, using which we demonstrate how their structural, mechanical, electronic, and optical properties are tuned via stoichiometry engineering. These alloys exhibit outstanding mechanical strength and stability. They possess indirect band gaps of 1.25-1.80 eV. For Ti2(1-x)Zr2xCO2 and Ti2(1-x)Hf2xCO2, they display higher absorbance in the solar spectrum than their constituent Zr2CO2 and Hf2CO2, respectively. Most of the MXene alloys also show appropriately aligned band edges for water splitting. We predict the Ti2(1-x)Zr2xCO2 alloy with x = 0.2778 to be the most promising water-splitting photocatalyst among the MXenes studied here, outperforming its constituents, Ti2CO2 and Zr2CO2, when solar absorbance performance and band-edge alignments are simultaneously considered. This work demonstrates that alloying can be used to effectively tune photocatalytic performance.
机译:结合密度泛函理论和簇膨胀方法,我们研究了半导体Ti2CO2,Zr2CO2和HF2CO2的3个二元MxEne合金系统,其中过渡金属彼此替代(即,Ti2(1-x)Zr2xco2,Ti2(1-x )HF2xCO2和Zr2(1-x)HF2CO2)。我们表明,该组MxEne合金在所有组合物中形成固溶体阶段。产生特殊的Quasirandom结构以模拟这些合金的固溶液相形,我们使用该合金的固溶液相模拟它们的结构,机械,电子和光学性质是如何通过化学计量工程进行调整的。这些合金具有出色的机械强度和稳定性。它们具有间接带隙为1.25-1.80 EV。对于Ti2(1-X)Zr 2×CO 2和Ti2(1-x)HF2xCO2,它们分别显示太阳光谱比其成分Zr2CO2和HF2CO2更高的吸光度。大部分MxENE合金也显示出适当的水分裂带边缘。我们将Ti2(1-x)Zr2xco2合金预测为x = 0.2778,在这里研究的MXEN中最有前途的水分解光催化剂,当同时考虑太阳能吸光度性能和带边缘对准时,其成分,Ti2CO2和Zr2CO2优于其成分。 。这项工作表明,合金化可用于有效调整光催化性能。

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