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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Inhibition of a structural phase transition in one-dimensional organometal halide perovskite nanorods grown inside porous silicon nanotube templates
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Inhibition of a structural phase transition in one-dimensional organometal halide perovskite nanorods grown inside porous silicon nanotube templates

机译:多孔硅纳米管模板内部生长的一维有机金属卤化物钙钛矿纳米棒中结构相变的抑制

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One-dimensional organo-metal halide perovskite (CH_3NH_3PbI_3) nanorods whose diameter and length are dictated by the inner size of porous silicon nanotube templates have been grown, characterized, and compared to bulk perovskites in the form of microwires. We have observed a structural phase transition for bulk perovskites, where the crystal structure changes from tetragonal to orthorhombic at about 160 K, as opposed to small diameter one-dimensional perovskite nanorods, of the order of 30-70 nm in diameter, where the phase transition is inhibited and the dominant phase remains tetragonal. Two major experimental techniques, infrared absorption spectroscopy and photoluminescence, were utilized to probe the temperature dependence of the perovskite phases over the 4-300 K temperature range. Yet, different characteristics of the phase transition were measured by the two spectroscopic methods and explained by the presence of small, tetragonal inclusions embedded in the orthorhombic phase. The inhibition of the phase transition is attributed to the large surface area of these one-dimensional perovskite nanorods, which gives rise to a large stress that, in turn, prevents the formation of the orthorhombic phase. The absence of phase transition enables the measurement of the tetragonal bandgap energy down to low temperatures.
机译:已经生长,表征了一维有机金属卤化物钙钛矿(CH_3NH_3PbI_3)纳米棒,其直径和长度由多孔硅纳米管模板的内部尺寸决定,并与微丝形式的块状钙钛矿进行了比较。我们已经观察到整体钙钛矿的结构相变,其中晶体结构在约160 K处从四方变为正交晶,这与直径为30-70 nm的小直径一维钙钛矿纳米棒相反。过渡被抑制,主导相保持四方。红外吸收光谱法和光致发光法是两种主要的实验技术,用于探测4-300 K温度范围内钙钛矿相的温度依赖性。然而,通过两种光谱方法测量了相变的不同特性,并通过在正交相中嵌入了小的四边形夹杂物进行了解释。相变的抑制归因于这些一维钙钛矿纳米棒的大表面积,这引起了很大的应力,进而阻止了正交晶相的形成。没有相变,可以测量低至低温的四方带隙能量。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2017年第8期|085433.1-085433.10|共10页
  • 作者单位

    Racah Institute of Physics and the Harvey M. Kruger Family Center for Nanoscience and Nanotechnology, the Hebrew University of Jerusalem, Jerusalem 91904, Israel;

    Racah Institute of Physics and the Harvey M. Kruger Family Center for Nanoscience and Nanotechnology, the Hebrew University of Jerusalem, Jerusalem 91904, Israel;

    Department of Chemistry, Texas Christian University, Fort Worth, Texas, 76129 USA;

    Department of Chemistry, Texas Christian University, Fort Worth, Texas, 76129 USA;

    Racah Institute of Physics and the Harvey M. Kruger Family Center for Nanoscience and Nanotechnology, the Hebrew University of Jerusalem, Jerusalem 91904, Israel;

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