P. -Y. Hou

Long-time storage of entangled logical states in decoherence-free subspaces

L. Zhang [1], Y. -L. Xu [1], Y. -K. Wu [1,2], C. Zhang [3], Z. -B. Cui [1], Y. -Y. Chen [1], W. -Q. Lian [3], J. -Y. Ma [3], B. -X. Qi [1], Y. -F. Pu [1,2], Z. -C. Zhou [1,2], L. He [1,2], P. -Y. Hou [1,2], L. -M. Duan [1,2,4]

Abstract

The maintenance of quantum entanglement lays the elementary building block of quantum information processing, requiring an integration of long coherence time, sufficient storage capacity, and high-fidelity entangling gates. Here we encode two-qubit entangled states into the decoherence-free subspaces (DFS) of four ions in a cryogenic trap. By crosstalk-free sympathetic cooling under dual-type encoding and multi-state detection which discards the collision-induced leakage error, we achieve a storage lifetime of about one hour for the entangled logical states. We further study the second-order DFS and show its advantage in suppressing the spatially nonuniform noise over the first-order DFS. Our work paves the way for applications of DFS quantum memories in quantum computing, quantum network and precision measurement.

Hardware-Economic Manipulation of Dual-Type ${}^{171}$Yb$^+$ Qubits

Y. -J. Yi [1], Y. -Y. Chen [1], Y. -H. Hou [2], Y. -K. Wu [1,3], L. Zhang [1], C. Zhang [2], Y. -L. Xu [1], J. Ye [1], W. -X. Guo [2], B. -X. Qi [1], Z. -C. Zhou [1,3], P. -Y. Hou [1,3], L. -M. Duan [1,3]

Abstract

The dual-type qubit scheme is an emerging method to suppress crosstalk errors in scalable trapped-ion quantum computation and quantum network. Here we report a hardware-economic way to control dual-type $^{171}\mathrm{Yb}^+$ qubits using a single $355\,$nm mode-locked pulsed laser. Utilizing its broad frequency comb structure, we drive the Raman transitions of both qubit types encoded in the $S_{1/2}$ and the $F_{7/2}$ hyperfine levels, and probe their carrier transitions and the motional sidebands. We further demonstrate a direct entangling gate between the two qubit types. Our work can simplify the manipulation of the $^{171}\mathrm{Yb}^+$ qubits both at the hardware and the software level.

Long-time storage of a decoherence-free subspace logical qubit in a dual-type quantum memory

Y. L. Xu [1], L. Zhang [1], C. Zhang [2], Y. K. Wu [1,3], Y. Y. Chen [1], C. X. Huang [1], Z. B. Cui [1], R. Yao [2], W. Q. Lian [2], J. Y. Ma [2], W. X. Guo [2], B. X. Qi [1], P. Y. Hou [1,3], Y. F. Pu [1,3], Z. C. Zhou [1,3], L. He [1,3], L. M. Duan [1,3]

Abstract

A quantum memory is an essential element for quantum computation, quantum network and quantum metrology. Previously, a single-qubit quantum memory with a coherence time of about an hour has been realized in a dual-species setup where a coolant ion provides sympathetic cooling for a memory ion of different species. However, the frequent random position hopping between the ions in the room-temperature trap limits the technique there only applicable to single-qubit storage. Here we report a multi-ion quantum memory in a cryogenic trap based on the dual-type scheme, and demonstrate a coherence time above two hours for a logical qubit encoded in the decoherence-free subspace, i.e. two-ion entangled states, after correcting the dominant leakage error. Our scheme alleviates the necessity of an ultra-stable frequency reference for the stored qubit, and has a preferable scalability owing to the same mass of the metastable-state memory ions and the ground-state coolant ion.

Quantum tomography of a third-order exceptional point in a dissipative trapped ion

Y. -Y. Chen [1], K. Li [1,2], L. Zhang [1], Y. -K. Wu [1,3], J. -Y. Ma [4], H. -X. Yang [4], C. Zhang [4], B. -X. Qi [1], Z. -C. Zhou [1,3], P. -Y. Hou [1,3], Y. Xu [1,3], L. -M. Duan [1,3]

Abstract

The requirement for Hermiticity in quantum mechanics ensures the reality of energies, while the parity-time symmetry offers an alternative route to achieve this goal. Interestingly, in a three-level system, the parity-time symmetry-breaking can lead to a third-order exceptional point with distinctive topological properties and enhanced sensitivity. To experimentally implement this in open quantum systems, it is essential to introduce two well-controlled loss channels. However, the requirement for these two loss channels presents a challenge in experimental implementation due to the lack of methods to realize the dynamics governed by an effective non-Hermitian Hamiltonian. Here we address the challenge by employing two approaches to eliminate the effects of quantum jump terms so that the dynamics is governed by an effective non-Hermitian Hamiltonian in a dissipative trapped ion with two loss channels. Based on this, we experimentally observe the parity-time symmetry-breaking-induced third-order exceptional point through non-Hermitian absorption spectroscopy. In particular, we perform quantum state tomography to directly demonstrate the coalescence of three eigenstates into a single eigenstate at the exceptional point. Finally, we identify an intrinsic third order Liouvillian exceptional point associated with a parity-time symmetry breaking via quench dynamics. Our experiments can be extended to observe other non-Hermitian phenomena involving more than two levels and potentially find applications in quantum information technology.

Electromagnetically-Induced-Transparency Cooling with a Tripod Structure in a Hyperfine Trapped Ion with Mixed-Species Crystals

J. J. Wu, P. -Y. Hou, S. D. Erickson, A. D. Brandt, Y. Wan, G. Zarantonello, D. C. Cole, A. C. Wilson, D. H. Slichter, D. Leibfried

Abstract

Cooling of atomic motion is a crucial tool for many branches of atomic physics, ranging from fundamental physics explorations to quantum information and sensing. For trapped ions, electromagnetically-induced-transparency (EIT) cooling has received attention for the relative speed, low laser power requirements, and broad cooling bandwidth of the technique. However, in applications where the ion used for cooling has hyperfine structure to enable long coherence times, it is difficult to find a closed three-level system in which to perform standard EIT cooling. Here, we demonstrate successful EIT cooling on 25Mg+ by the addition of an extra laser frequency; this method can be applied to any ion with non-zero nuclear spin. Furthermore, we demonstrate simultaneous EIT cooling of all axial modes in mixed-species crystals 9Be+ - 25Mg+ and 9Be+ - 25Mg+ - 9Be+ through the 25Mg+ ion.

Hamiltonian learning for 300 trapped ion qubits with long-range couplings

S. -A. Guo [1], Y. -K. Wu [1,2,3], J. Ye [1], L. Zhang [1], Y. Wang [4], W. -Q. Lian [4], R. Yao [4], Y. -L. Xu [1], C. Zhang [4], Y. -Z. Xu [1], B. -X. Qi [1], P. -Y. Hou [1,2], L. He [1,2], Z. -C. Zhou [1,2], L. -M. Duan [1,2,5]

Abstract

Quantum simulators with hundreds of qubits and engineerable Hamiltonians have the potential to explore quantum many-body models that are intractable for classical computers. However, learning the simulated Hamiltonian, a prerequisite for any applications of a quantum simulator, remains an outstanding challenge due to the fast increasing time cost with the qubit number and the lack of high-fidelity universal gate operations in the noisy intermediate-scale quantum era. Here we demonstrate the Hamiltonian learning of a two-dimensional ion trap quantum simulator with 300 qubits. We employ global manipulations and single-qubit-resolved state detection to efficiently learn the all-to-all-coupled Ising model Hamiltonian, with the required quantum resources scaling at most linearly with the qubit number. Our work paves the way for wide applications of large-scale ion trap quantum simulators.

Individually Addressed Entangling Gates in a Two-Dimensional Ion Crystal

Y. -H. Hou [1], Y. -J. Yi [1], Y. -K. Wu [1,2], Y. -Y. Chen [1], L. Zhang [1], Y. Wang [1,3], Y. -L. Xu [1], C. Zhang [1,3], Q. -X. Mei, H. -X. Yang [3], J. -Y. Ma [3], S. -A. Guo [1], J. Ye [1], B. -X. Qi [1], Z. -C. Zhou [1,2], P. -Y. Hou [1,2], L. -M. Duan [1,2,4]

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.

Simulating the spin-boson model with a controllable reservoir in an ion trap

G. -X. Wang [1], Y. -K. Wu [1,2], R. Yao [3], W. -Q. Lian [3], Z. -J. Cheng [1], Y. -L. Xu [1], C. Zhang [1], Y. Jiang, Y. -Z. Xu [1], B. -X. Qi [1], P. -Y. Hou [1,2], Z. -C. Zhou [1,2], L. He [1,2], L. -M. Duan [1,2,4]

Abstract

The spin-boson model is a prototypical model for open quantum dynamics. Here we simulate the spin-boson model using a chain of trapped ions where a spin is coupled to a structured reservoir of bosonic modes. We engineer the spectral density of the reservoir by adjusting the ion number, the target ion location, the laser detuning to the phonon sidebands, and the number of frequency components in the laser, and we observe their effects on the collapse and revival of the initially encoded information. Our work demonstrates the ion trap as a powerful platform for simulating open quantum dynamics with complicated reservoir structures.

VECSEL systems for quantum information processing with trapped beryllium ions

S. C. Burd [1,2], J. -P. Penttinen, P. -Y. Hou [1,2], H. M. Knaack [1,2], S. Ranta, M. Mäki, E. Kantola, M. Guina, D. H. Slichter [1], D. Leibfried [1], A. C. Wilson [1]

Abstract

Two vertical-external-cavity surface-emitting laser (VECSEL) systems producing ultraviolet (UV) radiation at 235 nm and 313 nm are demonstrated. The systems are suitable for quantum information processing applications with trapped beryllium ions. Each system consists of a compact, single-frequency, continuous-wave VECSEL producing high-power near-infrared light, tunable over tens of nanometers. One system generates 2.4 W at 940 nm, using a gain mirror based on GaInAs/GaAs quantum wells, which is converted to 54 mW of 235 nm light for photoionization of neutral beryllium atoms. The other system uses a novel gain mirror based on GaInNAs/GaAs quantum-wells, enabling wavelength extension with manageable strain in the GaAs lattice. This system generates 1.6 W at 1252 nm, which is converted to 41 mW of 313 nm light that is used to laser cool trapped $^{9}$Be$^{+}$ ions and to implement quantum state preparation and detection. The 313 nm system is also suitable for implementing high-fidelity quantum gates, and more broadly, our results extend the capabilities of VECSEL systems for applications in atomic, molecular, and optical physics.

Ion transport and reordering in a two-dimensional trap array

Y. Wan [1,2], R. Jördens, S. D. Erickson [1,2], J. J. Wu [1,2], R. Bowler [1,2], T. R. Tan [1,2], P. -Y. Hou [1,2], D. J. Wineland [1,2,3], A. C. Wilson [1], D. Leibfried [1]

Abstract

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. Here, we use a junction connecting orthogonal linear segments in a two-dimensional (2D) trap array to reorder a two-ion crystal. The secular motion of the ions experiences low energy gain and the internal qubit levels maintain coherence during the reordering process, therefore demonstrating a promising method for providing all-to-all connectivity in a large-scale, two- or three-dimensional trapped-ion quantum information processor.