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      The Impact of Iron Adsorption on the Electronic and Photocatalytic Properties of the Zinc Oxide (0001) Surface: A First-Principles Study

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          Abstract

          The structural stability, electronic structure, and optical properties of an iron-adsorbed ZnO (0001) surface with three high-symmetry adsorption sites are investigated with first-principle calculations on the basis of density functional theory and the Hubbard-U method. It is found that the iron adatom in the H 3 adsorption site of ZnO (0001) surface has the lowest adsorption energy of −5.665 eV compared with T 4 and Top sites. For the Top site, compared with the pristine ZnO (0001) surface, the absorption peak located at 1.17 eV has a red shift, and the elevation of the absorption coefficient is more pronounced in the visible-light region, because the Fe-related levels are introduced in the forbidden band and near the Fermi level. The electrostatic potential computation reveals that the work function of the ZnO (0001) surface is significantly decreased from 2.340 to 1.768 eV when iron is adsorbed on the Top site. Furthermore, the degradation mechanism based on the band structure is analyzed. It can be concluded that the adsorption of iron will promote the separation of photoinduced carriers, thus improving the photocatalytic activity of ZnO (0001) surface. Our study benefits research on the photocatalytic activity of ZnO and the utilization rate of solar energy.

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          New insight into the enhanced photocatalytic activity of N-, C- and S-doped ZnO photocatalysts

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            MOF-derived yolk–shell CdS microcubes with enhanced visible-light photocatalytic activity and stability for hydrogen evolution

            Unique yolk–shell CdS microcubes with excellent photocatalytic H 2 -evolution activity and stability are synthesized through a facile microwave-assisted metal–organic-framework approach. Yolk–shell structures with a unique three-dimensional (3D) open architecture offer great advantages for constructing advanced photocatalysts. However, metal sulfides with yolk–shell nanostructures were rarely reported. In this work, unique yolk–shell CdS microcubes are synthesized from Cd–Fe Prussian blue analogues (Cd–Fe-PBA) through a facile microwave-assisted hydrothermal process. Their formation mechanism is also proposed based on the anion exchange and Kirkendall effect process. Benefitting from structural merits, including a 3D open structure, small size of primary nanoparticles, high specific surface area, and good structural robustness, the obtained yolk–shell CdS microcubes manifest excellent performances for photocatalytic hydrogen evolution from H 2 O under visible-light irradiation. The photocatalytic H 2 evolution rate is 3051.4 μmol h −1 g −1 (with an apparent quantum efficiency of 4.9% at 420 nm), which is ∼2.43 times higher than that of conventional CdS nanoparticles. Furthermore, the yolk–shell CdS microcubes exhibit remarkable photocatalytic stability. This work demonstrates that MOF-derived yolk–shell structured materials hold great promise for application in the field of energy conversion.
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              Local structure of condensed zinc oxide

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                Author and article information

                Journal
                Materials (Basel)
                Materials (Basel)
                materials
                Materials
                MDPI
                1996-1944
                12 March 2018
                March 2018
                : 11
                : 3
                : 417
                Affiliations
                [1 ]State Key Laboratory of Integrated Service Networks, School of Telecommunications Engineering, Xidian University, Xi’an 710071, China; jingsicheng@ 123456stu.xidian.edu.cn
                [2 ]Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China; huachao@ 123456home.ipe.ac.cn
                [3 ]School of Microelectronics, Xidian University, Xi’an 710071, China; ytyang@ 123456xidian.edu.cn
                [4 ]College of Electronic and Informational Engineering, Northwestern University, Xi’an 710127, China; zhangzy@ 123456nwu.edu.cn
                Author notes
                [* ]Correspondence: pingwang@ 123456xidian.edu.cn ; Tel.: +86-136-5923-8942
                Author information
                https://orcid.org/0000-0002-9707-4086
                Article
                materials-11-00417
                10.3390/ma11030417
                5872996
                29534524
                89e0bb20-526f-4462-a5c5-3b8a9f5b859f
                © 2018 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 28 January 2018
                : 09 March 2018
                Categories
                Article

                zno (0001) surface,first-principles,iron,optical properties,photocatalytic

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