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Manipulating efficient light emission in two-dimensional perovskite crystals by pressure-induced anisotropic deformation

机译:通过压力诱导的各向异性变形控制二维钙钛矿晶体的有效发光

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摘要

The hybrid nature and soft lattice of organolead halide perovskites render their structural changes and optical properties susceptible to external driving forces such as temperature and pressure, remarkably different from conventional semiconductors. Here, we investigate the pressure-induced optical response of a typical two-dimensional perovskite crystal, phenylethylamine lead iodide. At a moderate pressure within 3.5 GPa, its photoluminescence red-shifts continuously, exhibiting an ultrabroad energy tunability range up to 320 meV in the visible spectrum, with quantum yield remaining nearly constant. First-principles calculations suggest that an out-of-plane quasi-uniaxial compression occurs under a hydrostatic pressure, while the energy is absorbed by the reversible and elastic tilting of the benzene rings within the long-chain ligands. This anisotropic structural deformation effectively modulates the quantum confinement effect by 250 meV via barrier height lowering. The broad tunability within a relatively low pressure range will expand optoelectronic applications to a new paradigm with pressure as a tuning knob.
机译:有机卤化铅钙钛矿的混合性质和软晶格使其结构变化和光学特性易受外部驱动力(例如温度和压力)的影响,与传统半导体明显不同。在这里,我们研究了典型的二维钙钛矿晶体苯乙胺碘化铅的压力诱导光学响应。在3.5 GPa的中等压力下,其光致发光连续发生红移,在可见光谱中显示出高达320 meV的超宽能可调范围,量子产率几乎保持恒定。第一性原理计算表明,在静水压力下发生平面外的准单轴压缩,而能量通过长链配体中苯环的可逆和弹性倾斜吸收。这种各向异性的结构变形通过降低势垒高度有效地将量子约束效应调​​节了250 meV。在相对较低压力范围内的广泛可调性将以压力作为调节旋钮将光电应用扩展到新的范例。

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