有机无机杂化钙钛矿薄膜的太赫兹光谱特性研究

Research onterahertz spectral characteristics of organic-inorganic hybrid perovskite thin films

  • 摘要: 有机-无机杂化钙钛矿材料凭借其高载流子迁移率、可调带隙及宽谱吸收等特性,在太赫兹技术领域展现出巨大潜力。文中研究了有机-无机杂化钙钛矿(PEA)2PbI4薄膜的太赫兹光谱特性,利用太赫兹时域光谱系统(THz-TDS)对其在0.1~2.2 THz频段的光电响应进行表征。实验结果表明,通过优化旋涂工艺制备的薄膜在1.5 THz处呈现显著吸收峰,介电损耗低至1.72,折射率达2.85,且在<1 THz频段具有>90%的高透射率。X射线衍射(XRD)和扫描电子显微镜(SEM)分析证实,1500 r/min转速制备的样品具有高度有序的(00h)晶面取向和最低缺陷密度,其1.5/1.8 THz双峰吸收结构源于Pb-I骨架振动与层间耦合的协同作用。本研究为钙钛矿基太赫兹调制器、探测器及滤波器的设计提供了关键参数和理论依据。

     

    Abstract:
    Objective The terahertz spectral characteristics of two-dimensional (PEA)2PbI4 perovskite thin films are strongly dependent on their crystallographic orientation and defect density, which are primarily determined by spin-coating parameters. This study systematically investigates the correlation between spin-coating speed (500-2500 r/min) and terahertz optical properties to optimize device performance.
    Methods High-quality (PEA)2PbI4 thin films were prepared by optimizing the spin-coating process (1500 r/min, 30 s) with a precursor solution of PEAl∶ PbI2=2∶1 in DMF solvent. The films were characterized using terahertz time-domain spectroscopy (THz-TDS), X-ray diffraction (XRD), and scanning electron microscopy (SEM). Key parameters including absorption coefficient, dielectric loss, and refractive index were measured across 0.1-2.2 THz range.
    Results and Discussions The 1500 r/min samples exhibited optimal performance with: Characteristic absorption peak at 1.5 THz (38 cm−1); Low dielectric loss (1.72 at 0.3 THz); High refractive index (2.85 at 1.0 THz); Preferred (00h) crystal orientation confirmed by XRD. XRD and SEM analyses revealed that the 1500 r/min condition achieved the best balance between film uniformity and crystallinity, minimizing defect-induced phonon scattering. The 1.5/1.8 THz dual-peak absorption structure originates from Pb-I framework vibrations and interlayer coupling effects.
    Conclusions This work demonstrates that spin-coating speed critically influences the terahertz response of 2D perovskite films through microstructure modulation. The optimized 1500 r/min films show exceptional performance for terahertz modulators and filters, achieving 30% modulation depth. These findings provide fundamental insights into structure-property relationships and practical guidelines for developing high-performance terahertz functional devices.

     

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