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Nonperturbative THz Nonlinearities for Many-Body Quantum Control in Semiconductors

机译:半导体中许多体量子控制的非稳定性THz非线性

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Quantum computing and ultrafast quantum electronics constitute pivotal technologies of the 21st century and revolutionize the way we process information. Successful implementations require controlling superpositions of states and coherence in matter, and exploit nonlinear effects for elementary logic operations. In the THz frequency range between optics and electronics, solid state systems offer a rich spectrum of collective excitations such as excitons, phonons, magnons, or Landau electrons. Here, single-cycle THz transients of 8.7 kV/cm amplitude centered at 1 THz strongly excite inter-Landau-level transitions of magnetically biased GaAs quantum wells, facilitating coherent Landau ladder climbing by more than six rungs, population inversion, and coherent polarization control. Strong, highly nonlinear pump-probe and four- and six-wave mixing signals, entirely unexpected for this paragon of the harmonic oscillator, are revealed through two-time THz spectroscopy. In this scenario of nonperturbative polarization dynamics, our microscopic theory shows how the protective limits of Kohn's theorem are ultimately surpassed by dynamically enhanced Coulomb interactions, opening the door to exploiting many-body dynamics for nonlinear quantum control.
机译:量子计算和超快量子电子构成21世纪的枢轴技术,并彻底改变我们处理信息的方式。成功实现需要控制各国的叠加,并在物质中进行一致性,并利用基本逻辑操作的非线性效应。在光学和电子元件之间的THz频率范围内,固态系统提供丰富的集体激励频谱,如激动子,声子,千块子或Landau电子。这里,以1至1 ZHz的单循环THz振幅为8.7 kV / cm的幅度强烈激发磁偏置的GaAs量子孔的Landau型层水平过渡,促进了六个以上梯级,人口反转和相干偏振控制的相干Landau梯子。通过双重THz光谱揭示强大的,高度非线性泵探头和四波和六波混合信号,对该谐波振荡器的Paragon来说完全出乎意料。在这种非触发性偏振动态的情况下,我们的微观理论展示了Kohn定理的保护极限最终通过动态增强的库仑相互作用来超越,以利用用于非线性量子控制的许多身体动态的门。

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