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Dive into the research topics where Ruti Ben-shlomi is active.

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Featured researches published by Ruti Ben-shlomi.


Physical Review Letters | 2016

Dynamics of a Ground-State Cooled Ion Colliding with Ultracold Atoms

Ziv Meir; Tomas Sikorsky; Ruti Ben-shlomi; Nitzan Akerman; Yehonatan Dallal; Roee Ozeri

Ultracold atom-ion mixtures are gaining increasing interest due to their potential applications in ultracold and state-controlled chemistry, quantum computing, and many-body physics. Here, we studied the dynamics of a single ground-state cooled ion during few, to many, Langevin (spiraling) collisions with ultracold atoms. We measured the ions energy distribution and observed a clear deviation from the Maxwell-Boltzmann distribution, characterized by an exponential tail, to a power-law distribution best described by a Tsallis function. Unlike previous experiments, the energy scale of atom-ion interactions is not determined by either the atomic cloud temperature or the ions trap residual excess-micromotion energy. Instead, it is determined by the force the atom exerts on the ion during a collision which is then amplified by the trap dynamics. This effect is intrinsic to ion Paul traps and sets the lower bound of atom-ion steady-state interaction energy in these systems. Despite the fact that our system is eventually driven out of the ultracold regime, we are capable of studying quantum effects by limiting the interaction to the first collision when the ion is initialized in the ground state of the trap.


Nature Communications | 2018

Spin-controlled atom–ion chemistry

Tomas Sikorsky; Ziv Meir; Ruti Ben-shlomi; Nitzan Akerman; Roee Ozeri

Quantum control of chemical reactions is an important goal in chemistry and physics. Ultracold chemical reactions are often controlled by preparing the reactants in specific quantum states. Here we demonstrate spin-controlled atom–ion inelastic (spin-exchange) processes and chemical (charge-exchange) reactions in an ultracold Rb-Sr+ mixture. The ion’s spin state is controlled by the atomic hyperfine spin state via spin-exchange collisions, which polarize the ion’s spin parallel to the atomic spin. We achieve ~ 90% spin polarization due to the absence of strong spin-relaxation channel. Charge-exchange collisions involving electron transfer are only allowed for (RbSr)+ colliding in the singlet manifold. Initializing the atoms in various spin states affects the overlap of the collision wave function with the singlet molecular manifold and therefore also the reaction rate. Our observations agree with theoretical predictions.Chemical reactions with ultracold atoms and ions are explored so far with the atom–ion interactions. Here the authors discuss spin-exchange process and show that the spin state of an ensemble of neutral Rb atoms can be used to control the final spin of an imbedded Sr+ ion in the collisions.


Physical Review A | 2017

Doppler cooling thermometry of a multilevel ion in the presence of micromotion

Tomas Sikorsky; Ziv Meir; Nitzan Akerman; Ruti Ben-shlomi; Roee Ozeri

We study the time-dependent fluorescence of an initially hot, multi-level, single atomic ion trapped in a radio-frequency Paul trap during Doppler cooling. We have developed an analytical model that describes the fluorescence dynamics during Doppler cooling which is used to extract the initial energy of the ion. While previous models of Doppler cooling thermometry were limited to atoms with a two-level energy structure and neglected the effect of the trap oscillating electric fields, our model applies to atoms with multi-level energy structure and takes into account the influence of micromotion on the cooling dynamics. This thermometry applies to any initial energy distribution. We experimentally test our model with an ion prepared in a coherent, thermal and Tsallis energy distributions.


Journal of Modern Optics | 2018

Experimental apparatus for overlapping a ground-state cooled ion with ultracold atoms

Ziv Meir; Tomas Sikorsky; Ruti Ben-shlomi; Nitzan Akerman; Meirav Pinkas; Yehonatan Dallal; Roee Ozeri

Experimental realizations of charged ions and neutral atoms in overlapping traps are gaining increasing interest due to their wide research application ranging from chemistry at the quantum level to quantum simulations of solid state systems. In this paper, we describe our experimental system in which we overlap a single ground-state cooled ion trapped in a linear Paul trap with a cloud of ultracold atoms such that both constituents are in the K regime. Excess micromotion (EMM) currently limits atom–ion interaction energy to the mK energy scale and above. We demonstrate spectroscopy methods and compensation techniques which characterize and reduce the ion’s parasitic EMM energy to the K regime even for ion crystals of several ions. We further give a substantial review on the non-equilibrium dynamics which governs atom–ion systems. The non-equilibrium dynamics is manifested by a power law distribution of the ion’s energy. We also give an overview on the coherent and non-coherent thermometry tools which can be used to characterize the ion’s energy distribution after single to many atom–ion collisions.


Physical Review A | 2017

Single-shot energy measurement of a single atom and the direct reconstruction of its energy distribution

Ziv Meir; Tomas Sikorsky; Nitzan Akerman; Ruti Ben-shlomi; Meirav Pinkas; Roee Ozeri

An ensemble of atoms in steady-state, whether in thermal equilibrium or not, has a well defined energy distribution. Since the energy of single atoms within the ensemble cannot be individually measured, energy distributions are typically inferred from statistical averages. Here, we show how to measure the energy of a single atom in a single experimental realization (single-shot). The energy distribution of the atom over many experimental realizations can thus be readily and directly obtained. We apply this method to a single-ion trapped in a linear Paul trap for which energy measurement in a single-shot is applicable from 10 K and above. Our energy measurement agrees within 5% to a different thermometry method which requires extensive averaging. Apart from the total energy, we also show that the motion of the ion in different trap modes can be distinguished. We believe that this method will have profound implications on single particle chemistry and collision experiments.


Physical Review Letters | 2018

Phase Locking between Different Partial Waves in Atom-Ion Spin-Exchange Collisions

Tomas Sikorsky; Masato Morita; Ziv Meir; Alexei A. Buchachenko; Ruti Ben-shlomi; Nitzan Akerman; Edvardas Narevicius; Timur V. Tscherbul; Roee Ozeri


Physical Review Letters | 2018

Direct Observation of Atom-Ion Nonequilibrium Sympathetic Cooling

Ziv Meir; Meirav Pinkas; Tomas Sikorsky; Ruti Ben-shlomi; Nitzan Akerman; Roee Ozeri


Nature Communications | 2018

Publisher Correction: Spin-controlled atom–ion chemistry

Tomas Sikorsky; Ziv Meir; Ruti Ben-shlomi; Nitzan Akerman; Roee Ozeri


Archive | 2017

Spin controlled atom-ion inelastic collisions

Tomas Sikorsky; Ziv Meir; Ruti Ben-shlomi; Nitzan Akerman; Roee Ozeri


Bulletin of the American Physical Society | 2016

Observation of a power-law energy distribution in atom-ion hybrid system

Ziv Meir; Nitzan Akerman; Tomas Sikorsky; Ruti Ben-shlomi; Yehonatan Dallal; Roee Ozeri

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Roee Ozeri

Weizmann Institute of Science

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Tomas Sikorsky

Weizmann Institute of Science

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Ziv Meir

Weizmann Institute of Science

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Nitzan Akerman

Weizmann Institute of Science

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Yehonatan Dallal

Weizmann Institute of Science

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Meirav Pinkas

Weizmann Institute of Science

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Edvardas Narevicius

Weizmann Institute of Science

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