Matthias Weidemüller

Momentum spectroscopy for multiple ionization of cold rubidium in the elliptically polarized laser field

Junyang Yuan [1,2,3], Yixuan Ma [1,2,3], Renyuan Li [1,2], Huanyu Ma [1,2,3], Yizhu Zhang [1,4], Difa Ye [5], Zhenjie Shen [1], Tian-Min Yan, Xincheng Wang [3,6,7,8], Matthias Weidemüller, Yuhai Jiang [1,2,3,7]

Abstract

Employing recent developed magneto-optical trap recoil ion momentum spectroscopy (MOTRIMS) combining cold atom, strong laser pulse, and ultrafast technologies, we study momentum distributions of the multiply ionized cold rubidium (Rb) induced by the elliptically polarized laser pulses (35 fs, $1.3 \times 10^{15}$ W/cm$^2$). The complete vector momenta of Rbn+ ions up to charge state n = 4 are recorded with extremely high resolution (0.12 a.u. for Rb$^+$). Variations of characteristic multi-bands displayed in momentum distributions, as the ellipticity varies from the linear to circular polarization, are interpreted qualitatively with the classical over-barrier ionization model. Present momentum spectroscopy of cold heavy alkali atoms presents novel strong-field phenomena beyond the noble gases.

Recoil-ion momentum spectroscopy of photoionization of cold rubidium atoms in a strong laser field

Renyuan Li [1,2], Junyang Yuan [1,2,3], Xinya Hou [4], Shuai Zhang [3], Zhiyuan Zhu [1,3], Yixuan Ma [1,3], Qi Gao [1], Zhongyang Wang [1,3], T. -M. Yan [1], Chaochao Qin [4], Yizhu Zhang [1,5], Xincheng Wang [3,6,7,8,1,2], Matthias Weidemüller, Y. H. Jiang

Abstract

We study photoionization of cold rubidium atoms in a strong infrared laser field using a magneto-optical trap (MOT) recoil ion momentum spectrometer. Three types of cold rubidium target are provided, operating in two-dimension (2D) MOT, 2D molasses, and 3D MOT with densities in the orders of $10^7$ atoms/cm$^3$, $10^8$ atoms/cm$^3$, and $10^9$ atoms/cm$^3$, respectively. The density profile and the temperature of 3D MOT are characterized using the absorption imaging and photoionization. The momentum distributions of Rb$^+$ created by absorption of two- or three-photon illuminate a dipole-like double-peak structure, in good agreement with the results in the strong field approximation. The yielding momentum resolution of $0.12 \pm 0.03$ a.u. is achieved in comparison with theoretical calculations, exhibiting the great prospects for the study of electron correlations in alkali metal atoms through interaction with strong laser pulses.

Dynamics of a single trapped ion immersed in a buffer gas

Bastian Höltkemeier, Pascal Weckesser [1,2], Henry López-Carrera, Matthias Weidemüller

Abstract

We provide a comprehensive theoretical framework for describing the dynamics of a single trapped ion interacting with a neutral buffer gas, thus extending our previous studies on buffer-gas cooling of ions beyond the critical mass ratio [B. Höltkemeier et al., Phys. Rev. Lett. 116, 233003 (2016)]. By transforming the collisional processes into a frame, where the ion's micromotion is assigned to the buffer gas atoms, our model allows one to investigate the influence of non-homogeneous buffer gas configurations as well as higher multipole orders of the radio-frequency trap in great detail. Depending on the neutral-to-ion mass ratio, three regimes of sympathetic cooling are identified which are characterized by the form of the ion's energy distribution in equilibrium. We provide analytic expressions and numerical simulations of the ion's energy distribution, spatial profile and cooling rates for these different regimes. Based on these findings, a method for actively decreasing the ion's energy by reducing the spatial expansion of the buffer gas arises (Forced Sympathetic Cooling).

Reactive collisions of trapped anions with ultracold atoms

Johannes Deiglmayr, Anna Göritz, Thorsten Best, Matthias Weidemüller, Roland Wester

Abstract

We present a scheme to embed molecular anions in a gas of ultracold rubidium atoms as a route towards the preparation of cold molecular ions by collisional cooling with ultracold atoms. Associative detachment as an important loss process in collisions between OH- molecules and rubidium atoms is studied. The density distribution of trapped negative ions in the multipole radiofrequency trap is measured by photodetachment tomography, which allows us to derive absolute rate coefficients for the process. We define a regime where translational and internal cooling of molecular ions embedded into the ultracold atomic cloud can be achieved.