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Femtosecond Spectroscopy of Unipolar Nanometer-Scale High-Field Transport in GaAs

机译:高极纳米尺度高场运输的飞秒光谱法

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Femtosecond high-field transport in GaAs is investigated tracing ultrafast modifications of the Franz-Keldysh absorption spectrum of AlGaAs heterostructure diodes. A sophisticated sample design allows to isolate unipolar transport contributions in combination with a nanometer scale definition of layers for both photoexcitation and detection of the propagating carriers. This novel all-optical technique is applied to various aspects of ultrafast charge dynamics in semiconductors: (ⅰ) Isolating the contribution of holes, we directly measure transient carrier velocities for electric fields between 15 kV/cm and 200 kV/cm. Especially, we compare room temperature operation to results for T_L = 4 K. Transient hole velocities are found not to exceed a value of 1.2 x 10~7 cm/s which is a result of ultrafast optical phonon emission with a scattering time below 25 fs. (ⅱ) For the case of unipolar electron transport, we find an ultrafast velocity overshoot and a quasi-ballistic electron motion with an average velocity of 4 x 10~7 cm/s over distances as large as 200 nm. (ⅲ ) For electric fields F > 350 kV/cm the dynamical build up of a nonequilibrium carrier avalanche due to impact ionization is directly analyzed in the time domain. Most interestingly, the timescale of the carrier multiplication is found to be in the order of 10 ps.
机译:GaAs中的飞秒高场运输是研究了Algaas异质结构二极管的Franz-Keldysh吸收光谱的追踪超快修饰。复杂的样品设计允许将单极传输贡献与层叠层的纳米级定义结合使用,用于相磷透明和检测传播载体。这种新的全光技术应用于半导体中超快电荷动力学的各个方面:(Ⅰ)隔离孔的贡献,我们直接测量15kV / cm和200kV / cm之间的电场的瞬态载流器。特别是,我们将室温操作与T_L = 4 K的结果进行比较。发现瞬态孔速度不超过1.2×10〜7cm / s的值,这是超快光学声子发射的散射时间低于25 fs的散射时间。 (Ⅱ)对于单极电子传输的情况,我们发现超快速度过冲和准弹性电子运动,平均速度为4×10〜7cm / s的距离,距离大至200nm。 (Ⅲ)对于电场F> 350kV / cm,在时域中直接分析由于冲击电离引起的非挤压载体雪崩的动态构建。最有意义地,发现载波乘法的时间质量为10 ps。

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