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揭示电荷载流子、激子和缺陷对ZnO非平衡光学性质的竞争贡献。

Revealing the competing contributions of charge carriers, excitons, and defects to the non-equilibrium optical properties of ZnO.

作者信息

Foglia Laura, Vempati Sesha, Tanda Bonkano Boubacar, Gierster Lukas, Wolf Martin, Sadofev Sergey, Stähler Julia

机构信息

Department of Physical Chemistry, Fritz Haber Institute of the Max Planck Society, Faradayweg 4-6, 14195 Berlin, Germany.

AG Photonik, Institut für Physik, Humboldt-Universität zu Berlin, Newtonstr. 15, 12489 Berlin, Germany.

出版信息

Struct Dyn. 2019 May 8;6(3):034501. doi: 10.1063/1.5088767. eCollection 2019 May.

Abstract

Due to its wide band gap and high carrier mobility, ZnO is, among other transparent conductive oxides, an attractive material for light-harvesting and optoelectronic applications. Its functional efficiency, however, is strongly affected by defect-related in-gap states that open up extrinsic decay channels and modify relaxation timescales. As a consequence, almost every sample behaves differently, leading to irreproducible or even contradicting observations. Here, a complementary set of time-resolved spectroscopies is applied to two ZnO samples of different defect density to disentangle the competing contributions of charge carriers, excitons, and defects to the nonequilibrium dynamics after photoexcitation: time-resolved photoluminescence, excited state transmission, and electronic sum-frequency generation. Remarkably, defects affect the transient optical properties of ZnO across more than eight orders of magnitude in time, starting with photodepletion of normally occupied defect states on femtosecond timescales, followed by the competition of free exciton emission and exciton trapping at defect sites within picoseconds, photoluminescence of defect-bound and free excitons on nanosecond timescales, and deeply trapped holes with microsecond lifetimes. These findings not only provide the first comprehensive picture of charge and exciton relaxation pathways in ZnO but also uncover the microscopic origin of previous conflicting observations in this challenging material and thereby offer means of overcoming its difficulties. Noteworthy, a similar competition of intrinsic and defect-related dynamics could likely also be utilized in other oxides with marked defect density as, for instance, TiO or SrTiO.

摘要

由于其宽带隙和高载流子迁移率,在其他透明导电氧化物中,氧化锌是一种用于光捕获和光电子应用的有吸引力的材料。然而,其功能效率受到与缺陷相关的带隙态的强烈影响,这些态会打开非本征衰减通道并改变弛豫时间尺度。因此,几乎每个样品的行为都不同,导致观测结果不可重复甚至相互矛盾。在这里,一组互补的时间分辨光谱技术被应用于两个具有不同缺陷密度的氧化锌样品,以厘清光激发后电荷载流子、激子和缺陷对非平衡动力学的竞争贡献:时间分辨光致发光、激发态透射和电子和频产生。值得注意的是,缺陷在超过八个数量级的时间内影响氧化锌的瞬态光学性质,从飞秒时间尺度上正常占据的缺陷态的光耗尽开始,接着是皮秒时间尺度内自由激子发射与缺陷位点处激子俘获的竞争,纳秒时间尺度上缺陷束缚激子和自由激子的光致发光,以及具有微秒寿命的深捕获空穴。这些发现不仅首次全面描绘了氧化锌中电荷和激子的弛豫路径,还揭示了这种具有挑战性的材料中先前相互矛盾的观测结果的微观起源,从而提供了克服其困难的方法。值得注意的是,在其他具有显著缺陷密度的氧化物中,例如二氧化钛或钛酸锶,也可能利用类似的本征和与缺陷相关的动力学竞争。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7166/6506340/7b4b71aeca16/SDTYAE-000006-034501_1-g001.jpg

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