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检测和描述激光诱导量子遂穿的非绝热性。

Detecting and Characterizing the Nonadiabaticity of Laser-Induced Quantum Tunneling.

机构信息

Wuhan National Laboratory for Optoelectronics and School of Physics, Huazhong University of Science and Technology, Wuhan 430074, China.

Max-Planck-Institut für Mikrostrukturphysik, Weinberg 2, 06120 Halle (Saale), Germany.

出版信息

Phys Rev Lett. 2019 Feb 8;122(5):053202. doi: 10.1103/PhysRevLett.122.053202.

Abstract

The nonadiabaticity of quantum tunneling through an evolving barrier is relevant to resolving laser-driven dynamics of atoms and molecules at an attosecond timescale. Here, we propose and demonstrate a novel scheme to detect the nonadiabatic behavior of tunnel ionization studied in an attoclock configuration, without counting on the laser intensity calibration or the modeling of the Coulomb effect. In our scheme, the degree of nonadiabaticity for tunneling scenarios in elliptically polarized laser fields can be steered continuously simply with the pulse ellipticity, while the critical instantaneous vector potentials remain identical. We observe the characteristic feature of the measured photoelectron momentum distributions, which matches the distinctive prediction of nonadiabatic theories. In particular, our experiments demonstrate that the nonadiabatic initial transverse momentum at the tunnel exit is approximately proportional to the instantaneous effective Keldysh parameters in the tunneling regime, as predicted theoretically by Ohmi, Tolstikhin, and Morishita [Phys. Rev. A 92, 043402 (2015)PLRAAN1050-294710.1103/PhysRevA.92.043402]. Our study clarifies a long-standing controversy over the validation of the adiabatic approximation and will substantially advance studies of laser-induced ultrafast dynamics in experiments.

摘要

量子隧穿通过演化势垒的非绝热性与解决阿秒时间尺度下原子和分子的激光驱动动力学有关。在这里,我们提出并演示了一种新方案,用于在阿秒钟配置中探测隧穿电离的非绝热行为,而无需对激光强度进行校准或对库仑效应进行建模。在我们的方案中,通过改变激光的椭圆偏振度,可以连续地控制隧穿场景的非绝热程度,而临界瞬时矢量势保持不变。我们观察到了测量光电子动量分布的特征,这与非绝热理论的独特预测相符。特别是,我们的实验证明,在隧穿出口处非绝热的初始横向动量与隧穿态下的瞬时有效 Keldysh 参数大致成正比,这与 Ohmi、Tolstikhin 和 Morishita 的理论预测一致[Phys. Rev. A 92, 043402 (2015)PLRAAN1050-294710.1103/PhysRevA.92.043402]。我们的研究澄清了关于绝热近似验证的长期争议,并将大大推进实验中激光诱导超快动力学的研究。

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