Individually Addressed Entangling Gates in a Two-Dimensional Ion Crystal
- URL: http://arxiv.org/abs/2406.13999v1
- Date: Thu, 20 Jun 2024 05:01:42 GMT
- Title: Individually Addressed Entangling Gates in a Two-Dimensional Ion Crystal
- Authors: Y. -H. Hou, Y. -J. Yi, Y. -K. Wu, Y. -Y. Chen, L. Zhang, Y. Wang, Y. -L. Xu, C. Zhang, Q. -X. Mei, H. -X. Yang, J. -Y. Ma, S. -A. Guo, J. Ye, B. -X. Qi, Z. -C. Zhou, P. -Y. Hou, L. -M. Duan,
- Abstract summary: We demonstrate high-fidelity two-qubit entangling gates between any ion pairs in a 2D crystal of four ions.
Our work paves the way for ion trap quantum computing with hundreds to thousands of qubits on a 2D ion crystal.
- Score: 0.19165511108619063
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Two-dimensional (2D) ion crystals have become a promising way to scale up qubit numbers for ion trap quantum information processing. However, to realize universal quantum computing in this system, individually addressed high-fidelity two-qubit entangling gates still remain challenging due to the inevitable micromotion of ions in a 2D crystal as well as the technical difficulty in 2D addressing. Here we demonstrate two-qubit entangling gates between any ion pairs in a 2D crystal of four ions. We use symmetrically placed crossed acousto-optic deflectors (AODs) to drive Raman transitions and achieve an addressing crosstalk error below 0.1%. We design and demonstrate a gate sequence by alternatingly addressing two target ions, making it compatible with any single-ion addressing techniques without crosstalk from multiple addressing beams. We further examine the gate performance versus the micromotion amplitude of the ions and show that its effect can be compensated by a recalibration of the laser intensity without degrading the gate fidelity. Our work paves the way for ion trap quantum computing with hundreds to thousands of qubits on a 2D ion crystal.
Related papers
- Scalable architecture for trapped-ion quantum computing using RF traps and dynamic optical potentials [0.0]
In principle there is no fundamental limit to the number of ion-based qubits that can be confined in a single 1D register.
Here we propose a holistic, scalable architecture for quantum computing with large ion-crystals.
We show that these cells behave as nearly independent quantum registers, allowing for parallel entangling gates on all cells.
arXiv Detail & Related papers (2023-11-02T12:06:49Z) - A low-crosstalk double-side addressing system using acousto-optic
deflectors for atomic ion qubits [43.30164109590217]
We demonstrate a low-crosstalk double-side addressing system based on a pair of acousto-optic deflectors (AODs)
The AODs addressing method can flexibly and parallelly address arbitrary ions between which the distance is variable in a chain.
We employ two 0.4NA objective lenses in both arms of the Raman laser and obtain a beam waist of 0.95$mumathrmm$, resulting in a Rabi rate crosstalk as low as $6.32times10-4$ when the neighboring ion separation is about 5.5$mu
arXiv Detail & Related papers (2023-06-02T07:12:59Z) - Microwave-activated gates between a fluxonium and a transmon qubit [59.95978973946985]
We propose and analyze two types of microwave-activated gates between a fluxonium and a transmon qubit.
For a medium-frequency fluxonium qubit, the transmon-fluxonium system allows for a cross-resonance effect mediated by the higher levels of the fluxonium.
A fast microwave CPHASE gate can be implemented using the higher levels of the fluxonium.
arXiv Detail & Related papers (2022-06-13T14:34:11Z) - Individual qubit addressing of rotating ion crystals in a Penning trap [0.0]
Trapped ions boast long coherence times and excellent gate fidelities, making them a useful platform for quantum information processing.
We propose a protocol that takes advantage of a deformable mirror to introduce AC Stark shift patterns that are static in the rotating frame of the crystal.
arXiv Detail & Related papers (2022-03-10T07:13:57Z) - Coherent effects contribution to a fast gate fidelity in ion quantum
computer [47.187609203210705]
We develop a numerical model for full simulation of coherence effects using a linear ion microtrap array and a 2D microtrap array.
We have also studied the dependency of the gate fidelity on the laser power fluctuations.
arXiv Detail & Related papers (2021-12-12T12:53:00Z) - Algorithmic Ground-state Cooling of Weakly-Coupled Oscillators using
Quantum Logic [52.77024349608834]
We introduce a novel algorithmic cooling protocol for transferring phonons from poorly- to efficiently-cooled modes.
We demonstrate it experimentally by simultaneously bringing two motional modes of a Be$+$-Ar$13+$ mixed Coulomb crystal close to their zero-point energies.
We reach the lowest temperature reported for a highly charged ion, with a residual temperature of only $Tlesssim200mathrmmu K$ in each of the two modes.
arXiv Detail & Related papers (2021-02-24T17:46:15Z) - A high-fidelity method for a single-step $N$-bit Toffoli gate in trapped
ions [0.0]
Conditional multi-qubit gates are a key component for elaborate quantum algorithms.
We propose a solution based on adiabatic switching of phonon mediated Ising interactions.
arXiv Detail & Related papers (2020-10-16T16:43:30Z) - High Fidelity Entangling Gates in a 3D Ion Crystal under Micromotion [0.0]
We develop an efficient numerical method to design high-fidelity entangling gates in a general 3D ion crystal.
We show a high-fidelity entangling gate design between two ions in a 100-ion crystal, with a theoretical fidelity of 99.9%.
arXiv Detail & Related papers (2020-09-28T01:33:31Z) - Ancilla mediated qubit readout and heralded entanglement between
rare-earth dopant ions in crystals [68.8204255655161]
We show how a Bayesian analysis exhausts the information about the state of the qubit from the optical signal of the ancilla ion.
We extend the architecture to ions residing in two remote cavities, and we show how continuous monitoring of fluorescence signals from the two ancilla ions leads to entanglement of the qubit ions.
arXiv Detail & Related papers (2020-07-06T16:31:46Z) - Scalable quantum computation with fast gates in two-dimensional
microtrap arrays of trapped ions [68.8204255655161]
We investigate the use of fast pulsed two-qubit gates for trapped ion quantum computing in a two-dimensional microtrap architecture.
We demonstrate that fast pulsed gates are capable of implementing high-fidelity entangling operations between ions in neighbouring traps faster than the trapping period.
arXiv Detail & Related papers (2020-05-01T13:18:22Z) - Ion transport and reordering in a two-dimensional trap array [0.0]
Scaling quantum information processors is a challenging task, requiring manipulation of a large number of qubits with high fidelity and a high degree of connectivity.
For trapped ions, this could be realized in a two-dimensional array of interconnected traps in which ions are separated, transported and recombined to carry out quantum operations on small subsets of ions.
arXiv Detail & Related papers (2020-03-07T06:04:21Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.