Trapped Ion Quantum Technologies

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Overview

Trapped Ion Quantum Technologies at Stockholm University, Stockholm, Sweden. Heads: Markus Hennrich. Ions: Sr+.

Institution
Stockholm University
City
Stockholm
Country
Sweden
Heads
Markus Hennrich
Ions
Sr+
Instrument
Instrument details not added yet.

Recent Publications

Magnetic properties and charge transport mechanisms in oxygen-deficient HfxZr1-xO2-y nanoparticles

Oleksandr S. Pylypchuk [1], Eugene A. Eliseev [2], Andrii V. Bodnaruk [1], Valentin V. Laguta [2,3], Yuri O. Zagorodniy [2], Denis O. Stetsenko [1], Andrei D. Yaremkevych [1], Oksana V. Leshchenko [2], Victor N. Pavlikov [2], Lesya Demchenko [4,5], Victor I. Styopkin [1], Myroslav. V. Karpets [2,5], Olena M. Fesenko [1], Victor V. Vainberg [1], Anna N. Morozovska [1]

Abstract

Study of nanoscale hafnia-zirconia physical properties is the key topic in fundamental and applied science. However, charge transport mechanisms and magnetic properties of hafnia-zirconia nanoparticles are very poorly studied both theoretically and experimentally. In this work we observed a superparamagnetic-like and superparaelectric-like response of ultra-small hafnia-zirconia nanoparticles prepared by the solid-state organonitrate synthesis. The EPR spectra of hafnia-zirconia nanopowders reveal the presence of paramagnetic defect centers, which may be hafnium and/or zirconium ions, which trapped an electron near an oxygen vacancy and changed their valence state from the non-paramagnetic +4 to the paramagnetic +3 state. The Raman spectra indicate the decisive role of surface defects, presumably oxygen vacancies, for all studied Zr compositions.At the same time the EELS analysis does not reveal any noticeable concentration of magnetic impurities in the hafnia-zirconia nanopowders, and the X-ray diffraction analysis reveals the dominant presence of the orthorhombic phase. We observed that the quasi-static relative dielectric permittivity of the hafnia-zirconia nanopowders overcomes 10^6 - 10^7 and related the colossal values with the superparaelectric state of the nanoparticles cores induced by the flexo-electro-chemical strains. It has been found that ultra-small hafnia-zirconia nanoparticles reveal posistor effect and relatively large values of accumulated charge. Thus, obtained results open the way for creation of silicon-compatible ferroics oxygen-deficient hafnia-zirconia nanoparticles with superparamagnetic and superparaelectric properties, which may be used in advanced FETs and electronic logic elements.

String Breaking Dynamics and Glueball Formation in a $2+1$D Lattice Gauge Theory

Kaidi Xu [1,2], Umberto Borla [1,2,3], Sergej Moroz [4,5], Jad C. Halimeh [1,6,2]

Abstract

With the advent of advanced quantum processors capable of probing lattice gauge theories (LGTs) in higher spatial dimensions, it is crucial to understand string dynamics in such models to guide upcoming experiments and to make connections to high-energy physics (HEP). Using tensor network methods, we study the far-from-equilibrium quench dynamics of electric flux strings between two static charges in the $2+1$D $\mathbb{Z}_2$ LGT with dynamical matter. We calculate the probabilities of finding the time-evolved wave function in string configurations of the same length as the initial string. At resonances determined by the the electric field strength and the mass, we identify various string breaking processes accompanied with matter creation. Away from resonance strings exhibit intriguing confined dynamics which, for strong electric fields, we fully characterize through effective perturbative models. Starting in maximal-length strings, we find that the wave function enters a dynamical regime where it splits into shorter strings and disconnected loops, with the latter bearing qualitative resemblance to glueballs in quantum chromodynamics (QCD). Our findings can be probed on state-of-the-art superconducting-qubit and trapped-ion quantum processors.

Three-dimensional $\mathcal{P}\mathcal{T}$-symmetric topological phases with Pontryagin index

Zory Davoyan [1], Wojciech J. Jankowski [1], Adrien Bouhon [1,2], Robert-Jan Slager [1]

Abstract

We report on a certain class of three-dimensional topological insulators and semimetals protected by spinless $\mathcal{P}\mathcal{T}$ symmetry, hosting an integer-valued bulk invariant. We show using homotopy arguments that these phases host multi-gap topology, providing a realization of a single $\mathbb{Z}$ invariant in three spatial dimensions that is distinct from the Hopf index. We identify this invariant with the Pontryagin index, which describes BPST instantons in particle physics contexts and corresponds to a 3-sphere winding number. We study naturally arising multi-gap linked nodal rings, topologically characterized by split-biquaternion charges, which can be removed by non-Abelian braiding of nodal rings, even without closing a gap. We additionally connect the describing winding number in terms of gauge-invariant combinations of non-Abelian Berry connection elements, indicating relations to Pontryagin characteristic class in four dimensions. These topological configurations are furthermore related to fully non-degenerate multi-gap phases that are characterized by a pair of winding numbers relating to two isoclinic rotations in the case of four bands and can be generalized to an arbitrary number of bands. From a physical perspective, we also analyze the edge states corresponding to this Pontryagin index as well as their dissolution subject to the gap-closing disorder. Finally, we elaborate on the realization of these novel non-Abelian phases, their edge states and linked nodal structures in acoustic metamaterials and trapped-ion experiments.

Colloquium: Quantum and Classical Discrete Time Crystals

Michael P. Zaletel [1], Mikhail Lukin [2], Christopher Monroe [3], Chetan Nayak [4], Frank Wilczek [5], Norman Y. Yao [6]

Abstract

The spontaneous breaking of time translation symmetry has led to the discovery of a new phase of matter - the discrete time crystal. Discrete time crystals exhibit rigid subharmonic oscillations, which result from a combination of many-body interactions, collective synchronization, and ergodicity breaking. This Colloquium reviews recent theoretical and experimental advances in the study of quantum and classical discrete time crystals. We focus on the breaking of ergodicity as the key to discrete time crystals and the delaying of ergodicity as the source of numerous phenomena that share many of the properties of discrete time crystals, including the AC Josephson effect, coupled map lattices, and Faraday waves. Theoretically, there exists a diverse array of strategies to stabilize time crystalline order in both closed and open systems, ranging from localization and prethermalization to dissipation and error correction. Experimentally, many-body quantum simulators provide a natural platform for investigating signatures of time crystalline order; recent work utilizing trapped ions, solid-state spin systems, and superconducting qubits will be reviewed. Finally, this Colloquium concludes by describing outstanding challenges in the field and a vision for new directions on both the experimental and theoretical fronts.

Ion Coulomb Crystals in Storage Rings for Quantum Information Science

S. Brooks, K. Brown, F. Méot, A. Nomerotski, S. Peggs [1], M. Palmer [1], T. Roser [1], T. Shaftan [1], G. H. Hoffstaetter [2], S. Nagaitsev [3], J. Lykken [3], J. Jarvis [3], V. Lebedev [3], G. Stancari [3], A. Valishev [3], A. Taylor [4], A. Hurd [4], N. Moody [4], P. Muggli [5], A. Aslam [6], S. G. Biedron [6], T. Bolin [6], S. Sosa Guitron [6], C. Gonzalez-Zacarias [7], M. Larsson [8], R. Thomas [8], B. Huang [9], T. Robertazzi [9], J. Cary [10], B. M. Hegelich [11], B. B. Blinov, S. Milton [12]

Abstract

Quantum information science is a growing field that promises to take computing into a new age of higher performance and larger scale computing as well as being capable of solving problems classical computers are incapable of solving. The outstanding issue in practical quantum computing today is scaling up the system while maintaining interconnectivity of the qubits and low error rates in qubit operations to be able to implement error correction and fault-tolerant operations. Trapped ion qubits offer long coherence times that allow error correction. However, error correction algorithms require large numbers of qubits to work properly. We can potentially create many thousands (or more) of qubits with long coherence states in a storage ring. For example, a circular radio-frequency quadrupole, which acts as a large circular ion trap and could enable larger scale quantum computing. Such a Storage Ring Quantum Computer (SRQC) would be a scalable and fault tolerant quantum information system, composed of qubits with very long coherence lifetimes. With computing demands potentially outpacing the supply of high-performance systems, quantum computing could bring innovation and scientific advances to particle physics and other DOE supported programs. Increased support of R$\&$D in large scale ion trap quantum computers would allow the timely exploration of this exciting new scalable quantum computer. The R$\&$D program could start immediately at existing facilities and would include the design and construction of a prototype SRQC. We invite feedback from and collaboration with the particle physics and quantum information science communities.

Anisotropy-mediated reentrant localization

Xiaolong Deng, Alexander L. Burin, Ivan M. Khaymovich

Abstract

We consider a 2d dipolar system, $d=2$, with the generalized dipole-dipole interaction $\sim r^{-a}$, and the power $a$ controlled experimentally in trapped-ion or Rydberg-atom systems via their interaction with cavity modes. We focus on the dilute dipolar excitation case when the problem can be effectively considered as single-particle with the interaction providing long-range dipolar-like hopping. We show that the spatially homogeneous tilt $β$ of the dipoles giving rise to the anisotropic dipole exchange leads to the non-trivial reentrant localization beyond the locator expansion, $a<d$, unlike the models with random dipole orientation. The Anderson transitions are found to occur at the finite values of the tilt parameter $β= a$, $0<a<d$, and $β= a/(a-d/2)$, $d/2<a<d$, showing the robustness of the localization at small and large anisotropy values. Both extensive numerical calculations and analytical methods show power-law localized eigenstates in the bulk of the spectrum, obeying recently discovered duality $a\leftrightarrow 2d-a$ of their spatial decay rate, on the localized side of the transition, $a>a_{AT}$. This localization emerges due to the presence of the ergodic extended states at either spectral edge, which constitute a zero fraction of states in the thermodynamic limit, decaying though extremely slowly with the system size.

Evaporative Cooling of Antiprotons to Cryogenic Temperatures

ALPHA Collaboration, G. B. Andresen, M. D. Ashkezari, M. Baquero-Ruiz [3], W. Bertsche [4,1], P. D. Bowe, E. Butler [4,5], C. L. Cesar, S. Chapman [3], M. Charlton [4], J. Fajans [3], T. Friesen [6,7,1,8,9,2], M. C. Fujiwara, D. R. Gill, J. S. Hangst, W. N. Hardy, R. S. Hayano, M. E. Hayden, A. Humphries [4], R. Hydomako [6], S. Jonsell [4,10], L. Kurchaninov [7], R. Lambo [5], N. Madsen [4], S. Menary [11], P. Nolan [12], K. Olchanski [7], A. Olin [7], A. Povilus [3], P. Pusa [12], F. Robicheaux [13], E. Sarid [14,9,15], D. M. Silveira, C. So [3,7,6,4], J. W. Storey, R. I. Thompson, D. P. van der Werf, D. Wilding [4,3], J. S. Wurtele, Y. Yamazaki [15]

Abstract

We report the application of evaporative cooling to clouds of trapped antiprotons, resulting in plasmas with measured temperature as low as 9~K. We have modeled the evaporation process for charged particles using appropriate rate equations. Good agreement between experiment and theory is observed, permitting prediction of cooling efficiency in future experiments. The technique opens up new possibilities for cooling of trapped ions and is of particular interest in antiproton physics, where a precise \emph{CPT} test on trapped antihydrogen is a long-standing goal.

Dissertations

No dissertations are linked yet.