Y. Xu

Multiplexed ion-ion entanglement over $1.2$ kilometer fibers

Z. B. Cui [1], Z. Q. Wang [1], P. Y. Liu [1], Y. Wang [2], P. C. Lai [1], J. X. Shi [1], Y. D. Sun [1], Z. C. Tian [1], H. S. Sun [1], Y. B. Liang [1], B. X. Qi [1], Y. Y. Huang [1], Z. C. Zhou [1,3], Y. K. Wu [1,3], Y. Xu [1,3], Y. F. Pu [1,3], L. M. Duan [1,3]

Abstract

Quantum networks and quantum repeaters represent the promising avenues for building large-scale quantum information systems, serving as foundational infrastructure for distributed quantum computing, long-distance quantum communication, and networked quantum sensing. A critical step in realizing a functional quantum network is the efficient and high-fidelity establishment of heralded entanglement between remote quantum nodes. Multiplexing offers a powerful strategy to accelerate remote entanglement distribution, particularly over long optical fibers. Here, we demonstrate the first multiplexing-enhanced heralded entanglement between two trapped-ion quantum network nodes. By multiplexing $10$ temporal photonic modes, we achieve a 4.59-fold speedup in ion-ion entanglement generation and attain an entanglement fidelity of $95.9\pm1.5\%$ over $1.2$ km of fiber. Employing a dual-type architecture, our system is readily scalable to multiple nodes, thereby establishing a key building block for future large-scale quantum networks.

Realization of a functioning dual-type trapped-ion quantum network node

Y. -Y. Huang [1], L. Feng [1], Y. -K. Wu [1,2], Y. -L. Xu [1], L. Zhang [1], Z. -B. Cui [1], C. -X. Huang [1], C. Zhang [3], S. -A. Guo [1], Q. -X. Mei [3], B. -X. Qi [1], Y. Xu [1,2], Y. -F. Pu [1,2], Z. -C. Zhou [1,2], L. -M. Duan [1,2]

Abstract

Trapped ions constitute a promising platform for implementation of a quantum network. Recently, a dual-type qubit scheme has been realized in a quantum network node where the communication qubits and the memory qubits are encoded in different energy levels of the same ion species, such that the generation of ion-photon entanglement on the communication qubits has negligible crosstalk error on the preloaded quantum information in the memory qubits. However, to achieve the versatile applications of a quantum network, a crucial component of the dual-type node, namely the entangling gate between the communication and the memory qubits, is still missing. Here we report a dual-type quantum network node equipped with ion-photon entanglement generation, crosstalk-free quantum memory and entangling gates between the dual-type qubits simultaneously. We demonstrate its practical applications including the quantum state teleportation and the preparation of multipartite entangled state. Our work achieves the necessary components of a dual-type quantum network node and paves the way toward its applications in a large-scale quantum internet.

A metropolitan-scale trapped-ion quantum network node with hybrid multiplexing enhancements

Z. -B. Cui [1], Z. -Q. Wang [1], P. -C. Lai [1], Y. Wang [2], J. -X. Shi [1], P. -Y. Liu [1], Y. -D. Sun [1], Z. -C. Tian [1], Y. -B. Liang [1], B. -X. Qi [1], Y. -Y. Huang [1], Z. -C. Zhou [1,3], Y. -K. Wu [1,3], Y. Xu [1,3], L. -M. Duan [1,3], Y. -F. Pu [1,3]

Abstract

Quantum network and quantum repeater are promising ways to scale up a quantum information system to enable various applications with unprecedented performance. As a current bottleneck of building a long-distance quantum network, the distribution rate of heralded entanglement between remote network nodes is typically much lower than the decoherence rate of each local node, which obstructs the implementation of a metropolitan-scale quantum network with more than two remote nodes. A promising scheme to accelerate the remote entanglement distribution is through multiplexing enhancement based on a multimode quantum network node. In this work, we experimentally realize a functional $5$-ion quantum network node with two different types of qubits inside. We employ a hybrid multiplexing scheme combining the methods of multiple excitation and ion shuttling, in which maximally $44$ time-bin modes are generated and sent through a long fiber to boost the entangling rate. Via this scheme, we can generate heralded ion-photon entanglement with a high fidelity of $96.8\%$/$94.6\%$/$89.8\%$ with a success rate of $263\,\text{s}^{-1}$/$40\,\text{s}^{-1}$/$4.28\,\text{s}^{-1}$, over a fiber of $3\,$m/$1\,$km/$12\,$km, respectively. In addition, the memory qubit can protect the stored quantum information from the destructive ion-photon entangling attempts via dual-type encoding and a memory coherence time of $366\,$ms is achieved. This coherence time has exceeded the expected entanglement generation time $234\,$ms over a $12\,$km fiber, which is realized for the first time in a metropolitan-scale quantum network node.

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.

Realization of a crosstalk-free two-ion node for long-distance quantum networking

P. -C. Lai [1], Y. Wang [1], J. -X. Shi [1], Z. -B. Cui [1], Z. -Q. Wang [1], S. Zhang [1], P. -Y. Liu [1], Z. -C. Tian [1], Y. -D. Sun [1], X. -Y. Chang [1], B. -X. Qi [1], Y. -Y. Huang [1], Z. -C. Zhou [1,2], Y. -K. Wu [1,2], Y. Xu [1,2], Y. -F. Pu [1,2], L. -M. Duan [1,2]

Abstract

Trapped atomic ions constitute one of the leading physical platforms for building the quantum repeater nodes to realize large-scale quantum networks. In a long-distance trapped-ion quantum network, it is essential to have crosstalk-free dual-type qubits: one type, called the communication qubit, to establish an entangling interface with telecom photons; and the other type, called the memory qubit, to store quantum information immune from photon scattering under entangling attempts. Here, we report the first experimental implementation of a telecom-compatible and crosstalk-free quantum network node based on two trapped $^{40}$Ca$^{+}$ ions. The memory qubit is encoded on a long-lived metastable level to avoid crosstalk with the communication qubit encoded in another subspace of the same ion species, and a quantum wavelength conversion module is employed to generate ion-photon entanglement over a $12\,$km fiber in a heralded style. Our work therefore constitutes an important step towards the realization of quantum repeaters and long-distance quantum networks.

Observation of topological Euler insulators with a trapped-ion quantum simulator

W. -D. Zhao, Y. -B. Yang, Y. Jiang, Z. -C. Mao, W. -X. Guo, L. -Y. Qiu, G. -X. Wang [1], L. Yao [1], L. He [1], Z. -C. Zhou [1], Y. Xu [1], L. -M. Duan [1]

Abstract

Symmetries play a crucial role in the classification of topological phases of matter. Although recent studies have established a powerful framework to search for and classify topological phases based on symmetry indicators, there exists a large class of fragile topology beyond the description. The Euler class characterizing the topology of two-dimensional real wave functions is an archetypal fragile topology underlying some important properties, such as non-Abelian braiding of crossing nodes and higher-order topology. However, as a minimum model of fragile topology, the two-dimensional topological Euler insulator consisting of three bands remains a significant challenge to be implemented in experiments. Here, we experimentally realize a three-band Hamiltonian to simulate a topological Euler insulator with a trapped-ion quantum simulator. Through quantum state tomography, we successfully evaluate the Euler class, Wilson loop flow and entanglement spectra to show the topological properties of the Hamiltonian. We also measure the Berry phases of the lowest energy band, illustrating the existence of four crossing points protected by the Euler class. The flexibility of the trapped-ion quantum simulator further allows us to probe dynamical topological features including skyrmion-antiskyrmion pairs and Hopf links in momentum-time space from quench dynamics. Our results show the advantage of quantum simulation technologies for studying exotic topological phases and open a new avenue for investigating fragile topological phases in experiments.