二维异质结构GaSe/ScGaSe3的高效全光催化水裂解

IF 5.9 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Chao He , Du He , Qinghua Lv , Bei Peng , Hao Wang , Pan Zhang , Jun-Hui Yuan , Jiafu Wang , Hui Lv
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引用次数: 0

摘要

在光催化水分解领域,太阳能的高效利用是至关重要的。然而,迄今为止,太阳光谱的红外和紫外部分仍然没有得到充分利用,这两部分加起来占太阳能总量的近一半,导致太阳能利用效率的重大损失。在此,我们精心设计了ii型带取向GaSe/ScGaSe3异质结构,并通过严格的第一性原理计算仔细检查其光催化能力。计算结果表明,价带和导带分布在两个相对的表面上,由于光催化剂的本征偶极子产生了较大的静电电位差。这种表面电位差作为光激发电子的辅助助推器,使GaSe/ScGaSe3异质结构具有最小的0.44 eV的间接带隙,确保在所有pH值下在固有电场作用下有效的光催化水分解反应。此外,异质结构具有独特的光学性质,表现出较高的光吸收系数。它捕获了10%到43%的可见光和紫外光,显著提高了阳光的利用效率。令人鼓舞的是,我们的分析表明,这种异质结构的太阳能制氢效率为33.77%,与独立的GaSe单层相比,这标志着346%的巨大飞跃。此外,双轴拉伸应变的应用进一步提高了这一效率,达到惊人的36.46%。这些显著的特性不仅强调了GaSe/ScGaSe3异质结构的巨大潜力和广阔的应用前景,也强调了其在推进光催化水分解领域的重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Highly efficient overall photocatalytic water splitting in 2D heterostructure GaSe/ScGaSe3

Highly efficient overall photocatalytic water splitting in 2D heterostructure GaSe/ScGaSe3
In the field of photocatalytic water splitting, the efficient utilization of solar energy is paramount. However, until now, the infrared and ultraviolet portions of the solar spectrum, which collectively constitute nearly half of the total solar energy, have remained underutilized, resulting in significant losses in solar energy utilization efficiency. Herein, we meticulously design a type-II band-aligned GaSe/ScGaSe3 heterostructure and meticulously examine its photocatalytic capabilities through rigorous first-principles calculations. The calculation results reveal the valence band and conduction band are distributed on two opposite surfaces with a large electrostatic potential difference produced by the intrinsic dipole of the photocatalyst. This surface potential difference, acting as an auxiliary booster for photoexcited electrons, This enables the GaSe/ScGaSe3 heterostructure to exhibit a minimal indirect band gap of 0.44 eV, ensuring effective photocatalytic water splitting reactions at all pH values under the action of the inherent electric field. Furthermore, the heterostructure possesses unique optical properties, demonstrating a high light absorption coefficient. It captures an impressive 10 % to 43 % of visible and ultraviolet light, significantly enhancing the utilization efficiency of sunlight. Encouragingly, our analysis shows that the corrected solar-to-hydrogen (STH) efficiency of this heterostructure is 33.77 %, marking a tremendous leap of 346 % compared to standalone GaSe monolayers. Additionally, the application of biaxial tensile strain further boosts this efficiency to an astonishing 36.46 %. These remarkable characteristics not only emphasize the immense potential and broad application prospects of the GaSe/ScGaSe3 heterostructure but also underscore its significance in advancing the field of photocatalytic water splitting.
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来源期刊
FlatChem
FlatChem Multiple-
CiteScore
8.40
自引率
6.50%
发文量
104
审稿时长
26 days
期刊介绍: FlatChem - Chemistry of Flat Materials, a new voice in the community, publishes original and significant, cutting-edge research related to the chemistry of graphene and related 2D & layered materials. The overall aim of the journal is to combine the chemistry and applications of these materials, where the submission of communications, full papers, and concepts should contain chemistry in a materials context, which can be both experimental and/or theoretical. In addition to original research articles, FlatChem also offers reviews, minireviews, highlights and perspectives on the future of this research area with the scientific leaders in fields related to Flat Materials. Topics of interest include, but are not limited to, the following: -Design, synthesis, applications and investigation of graphene, graphene related materials and other 2D & layered materials (for example Silicene, Germanene, Phosphorene, MXenes, Boron nitride, Transition metal dichalcogenides) -Characterization of these materials using all forms of spectroscopy and microscopy techniques -Chemical modification or functionalization and dispersion of these materials, as well as interactions with other materials -Exploring the surface chemistry of these materials for applications in: Sensors or detectors in electrochemical/Lab on a Chip devices, Composite materials, Membranes, Environment technology, Catalysis for energy storage and conversion (for example fuel cells, supercapacitors, batteries, hydrogen storage), Biomedical technology (drug delivery, biosensing, bioimaging)
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