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Slow Organic-to-lnorganic Sub-Lattice Thermalization in Methylammonium Lead Halide Perovskites Observed by Ultrafast Photoluminescence

机译:超快光致发光观察到甲基铵铅卤化物钙酸盐中的慢性有机氧化锂亚晶片热化

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摘要

Carrier dynamics in methylammonium lead halide (CH3NH3PbI3-xClx) perovskite thin films, of differing crystal morphology, are examined as functions of temperature and excitation wavelength. At room temperature, long-lived ( nanosecond) transient absorption signals indicate negligible carrier trapping. However, in measurements of ultrafast photoluminescence excited at 400 nm, a heretofore unexplained, large amplitude (50%-60%), 45 ps decay process is observed. This feature persists for temperatures down to the orthorhombic phase transition. Varying pump photon energy reveals that the fast, band-edge photoluminescence (PL) decay only appears for excitation = 2.38 eV (520 nm), with larger amplitudes for higher pump energies. Lower photon-energy excitation yields slow dynamics consistent with negligible carrier trapping. Further, sub-bandgap two-photon pumping yields identical PL dynamics as direct absorption, signifying sensitivity to the total deposited energy and insensitivity to interfacial effects. Together with first principles electronic structure and ab initio molecular dynamics calculations, the results suggest the fast PL decay stems from excitation of high energy phonon modes associated with the organic sub-lattice that temporarily enhance wavefunction overlap within the inorganic component owing to atomic displacement, thereby transiently changing the PL radiative rate during thermalization. Hence, the fast PL decay relates a characteristic organic-to-inorganic sub-lattice equilibration timescale at optoelectronic-relevant excitation energies.
机译:将甲基锂卤化物(CH3NH3PB1-XCLX)中的载体动力学在不同晶体形态的钙钛矿薄膜中被检查为温度和激发波长的功能。在室温下,长寿命(>纳秒)瞬态吸收信号表示载体捕获可忽略不计。然而,在400nm激发的超快光致发光的测量中,观察到迄今为止的迄今为止,大振幅(50%-60%),45 ps衰变过程。此功能持续到低于正交相位过渡的温度。不同的泵浦光子能量揭示了快速,带边的光致发光(PL)衰减仅出现激发> = 2.38eV(520nm),具有更大的泵能量幅度较大。较低的光子 - 能量激励产生缓慢的动态,其持续载流子捕获一致。此外,子带隙双光子泵送产生相同的PL动力学作为直接吸收,这表示对总沉积能量的敏感性和对界面效应的不敏感性。结果与第一原理和AB Initio分子动力学计算,结果表明快速PL衰减源于与有机子晶格相关的高能声子模式的激发,其暂时增强无机组分内的波失速,从而提高原子位移,从而在热化期间瞬时改变PL辐射速率。因此,快速PL衰减涉及光电相关励磁能量的特征有机 - 无机子晶格平衡时间尺度。

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  • 来源
    《Advanced energy materials》 |2016年第15期|1600422.1-1600422.9|共9页
  • 作者单位

    Northwestern Univ Dept Chem 2145 Sheridan Rd Evanston IL 60208 USA;

    Natl Tsing Hua Univ Dept Mat Sci & Engn Hsinchu 30013 Taiwan;

    Natl Tsing Hua Univ Dept Mat Sci & Engn Hsinchu 30013 Taiwan;

    Natl Tsing Hua Univ Dept Mat Sci & Engn Hsinchu 30013 Taiwan;

    Argonne Natl Lab Ctr Nanoscale Mat 9700 Cass Ave Argonne IL 60439 USA;

    Argonne Natl Lab Ctr Nanoscale Mat 9700 Cass Ave Argonne IL 60439 USA;

    Northwestern Univ Dept Chem 2145 Sheridan Rd Evanston IL 60208 USA;

    Argonne Natl Lab Ctr Nanoscale Mat 9700 Cass Ave Argonne IL 60439 USA;

    Natl Tsing Hua Univ Dept Mat Sci & Engn Hsinchu 30013 Taiwan;

    Northwestern Univ Dept Chem 2145 Sheridan Rd Evanston IL 60208 USA|Argonne Natl Lab Ctr Nanoscale Mat 9700 Cass Ave Argonne IL 60439 USA;

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