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Hot electron-hole plasma dynamics and amplified spontaneous emission in ZnTe nanowires

机译:热电子空穴等离子体动力学和放大自发发射ZnTe纳米线

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Key to optimizing and tailoring the optoelectronic properties of semiconductor nanostructures for practical applications is a clear understanding of their carrier interactions and recombination dynamics. Herein, the electron-hole (e-h) plasma dynamics and the electron-phonon coupling interactions in zincblende ZnTe nanowires (NWs) were systematically investigated by time-resolved photoluminescence (TRPL) spectroscopy over a wide range of lattice temperatures (4-300 K) and pump densities. Following intense, non-resonant femtosecond (fs) laser pulse excitation, the excited carriers thermalize to quasi-equilibrium distribution through carrier-carrier and carrier-phonon scattering within a few picoseconds. The peak temperature of the hot electron gas (T-e0) is much higher than the lattice temperature and increases sub-linearly with the pump fluence. The hot electron gas thermalizes in two characteristic carrier density-dependent regimes i.e., within 35 ps under high carrier densities (e-h plasma) while persisting to 360 ps under low carrier densities (exciton). Temperature-dependent studies of the ZnTe NWs revealed that the acoustic phonons play a significant role in the cooling of the hot e-h plasma in these NWs and the emission band broadening arises from the interplay of the contributions from crystal imperfections, LA and LO phonon scattering and most importantly, from the hot carrier thermalization. For demonstration, e-h plasma-amplified spontaneous emission in ZnTe NWs at room temperature by one-and two-photon excitation was realized. The results provide new insights into carrier interactions and recombination dynamics of ZnTe NWs and highlight their potential for high-efficiency e-h plasma light emitters, sensors and in plasma photochemotherapy.
机译:优化和调整光电的关键属性的半导体纳米结构实际应用是一个清晰的理解他们的交互和复合载体动力学。动力学和电子声子耦合系统地研究了时间分辨光致发光(TRPL)在宽光谱晶格温度范围(4 - 300 K)和泵密度。飞秒激光脉冲激发(fs),兴奋的运营商使热化准平衡通过载劣和分布carrier-phonon散射几皮秒。电子气体(T-e0)远高于sub-linearly晶格温度和增加泵的影响。在两个特色载体使热化密度制约的制度即在35 ps在高载体密度(超高频等离子体)坚持下360 ps载体密度较低(激子)。ZnTe NWs透露,该剧声学声子一个重要的角色在冷却的热情况在这些NWs和等离子体发射光谱带扩大产生的相互作用来自晶体缺陷,洛杉矶LO声子散射,最重要的是,炎热的载波热化。演示中,超高频plasma-amplified自发的排放在ZnTe NWs室温实现双光子激发。结果为运营商提供新的见解ZnTe交互和复合动力学NWs并强调他们的潜力高效的超高频等离子体光发射器,传感器和等离子光化学疗法。

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