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首页> 外文期刊>CERAMICS INTERNATIONAL >Band gap tuning in nanocrystalline SrTi0.9Fe0.1O2.968 perovskite type for photocatalytic and photovoltaic applications
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Band gap tuning in nanocrystalline SrTi0.9Fe0.1O2.968 perovskite type for photocatalytic and photovoltaic applications

机译:纳米晶体SRTI0.9FE0.1O2.968光催化和光伏应用的纳米晶体SRTI0.9FE0.1O2.968

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In the present work and for the first time, tuning of the band gap width of the SrTiO3 (STO) perovskite to a value suitable for photocatalytic (PC) and photovoltaic (PV) applications is accomplished by the incorporation of Fe cation. Nanocrystalline SrTi0.9Fe0.1O2.968 (STFO) was prepared by a modified solid state reaction process including successive sequences of milling and calcinations at high temperature. The X-ray diffraction (XRD) pattern revealed the formation of a single cubic perovskite phase of STFO with average crystallite size equaling similar to 30 nm. The local lattice strain on (h00) and (hh0) planes was found to decrease by Fe doping. The absorption spectrum deduced from diffused reflectance showed high intense broad structure extending over the range similar to 0.5 - similar to 6 eV, whereas pure STO gave strong absorption only at the UV region (lambda 400 nm). The deduced band gap width of the STFO sample was 1.43 eV; an ideal value for PC and PV applications. Deconvolution of the broad absorption band revealed the presence of four absorption structures attributed to Fe defect centers. The narrowing of the band gap was also confirmed through the photoluminescence study where many emission lines covering the violet-blue region were detected. The type of the Fe species and the relative abundance of Fe3+ and Fe4+ were determined by Mossbauer spectroscopy. The presence of oxygen vacancies and Fe-O-v complexes were also supposed as lattice defects located above the O-2p and below the Ti-3d(t2g) states. The novel electronic structure researched in this study offers a new avenue in the field of band gap engineering for future application in the field of photocatalytic materials.
机译:在本作工作中,首次将SRTIO3(STO)Perovskite的带隙宽度调谐到适合于光催化(PC)和光伏(PV)应用的值,通过掺入Fe阳离子来完成。通过改性固态反应过程制备纳米晶SrTi0.9Fe0.1O2.968(STFO),包括高温碾磨和煅烧序列的连续序列。 X射线衍射(XRD)图案显示STFO的单个立方钙钛矿相的形成,平均微晶尺寸等于与30nm相似。发现局部晶格菌株(H00)和(HHO)平面的菌株通过Fe掺杂降低。从扩散反射率推导的吸收光谱显示出高强度宽的结构,其延伸在类似于0.5 - 类似于6eV的范围内,而纯STO仅在UV区(Lambda <400nm)处产生了强烈的吸收。 STFO样品的推导带隙宽度为1.43eV; PC和PV应用的理想值。宽吸收带的去卷积揭示了归因于Fe缺陷中心的四个吸收结构的存在。通过光致发光研究还证实了带隙的缩小,其中检测到覆盖紫色区域的许多排放线。 FESBAUER光谱法测定Fe种和Fe3 +和Fe4 +的相对丰度的类型。氧空位和Fe-O-V复合物的存在也被认为是位于O-2P上方的晶格缺陷,并低于Ti-3D(T2G)状态。本研究中研究的新型电子结构在光催化材料领域的应用领域的带隙工程领域提供了新的途径。

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