Chen-Xu Wang

Heterogeneous entanglement between a trapped ion and a solid-state quantum memory

Chen-Xu Wang [1,2,3], Yi-Yang Wang [1,2,3], Tian-Xiang Zhu [1,2,3], Qing-Quan Yao [1,2,3], Peng-Jun Liang [1,2,3], Yuan-Cong Li [1,2,3], Zi-Peng Liu [1,2,3], Ran He [5], Yong-Jian Han [1,2,3,4], Jin-Ming Cui [1,2,3,4], Zong-Quan Zhou [1,2,3,4], Yun-Feng Huang [1,2,3,4], Chuan-Feng Li [1,2,3,4], Guang-Can Guo [1,2,3,4]

Abstract

Hybrid quantum networks offer a promising architecture for scalable quantum information processing and a future quantum internet, as they can combine the complementary strengths of disparate physical platforms. While single-atom systems provide deterministic quantum logic gates, atomic ensembles enable large-capacity quantum storage. However, generating entanglement between such heterogeneous systems has remained an open challenge, primarily due to fundamental spectral mismatches and system complexity. Here, we demonstrate a hybrid quantum network that entangles a single trapped $\mathrm{^{171}Yb^{+}}$ ion and a quantum memory based on $\rm ^{153}Eu^{3+}\colon\!Y_2SiO_5$ crystal over a 75-m separation. Using polarization-maintaining quantum frequency conversion, we map spin-photon entanglement onto a hybrid entanglement between a single spin qubit and a collective excitation of the quantum memory. The resulting entangled state achieves a fidelity of $(89.21 \pm 2.23)\%$ and violates the CHSH-Bell inequality by 6 standard deviations ($S = 2.328 \pm 0.055$), confirming nonlocality between two heterogeneous nodes. This work establishes entanglement between a quantum processing module with a multiplexed quantum memory node, representing a key step toward a scalable, multifunctional quantum internet.

Quantum Quenches from the Critical Point: Theory and Experimental Validation in a Trapped-Ion Quantum Simulator

Chen-Xu Wang [1,2,3,4], András Grabarits, Jin-Ming Cui [1,2,3,5], Hua-Bi Zeng [6], Yun-Feng Huang [1,2,3,5], Chuan-Feng Li [1,2,3,5], Adolfo del Campo [4,7]

Abstract

We investigate quantum quenches starting from a critical point and experimentally probe the associated defect statistics using a trapped-ion quantum simulator of the transverse-field Ising model. The cumulants of the defect number distribution exhibit universal scaling with quench depth, featuring Gaussian behavior at leading order and systematic subleading corrections. Our results are in excellent agreement with both exact and approximate theoretical predictions, establishing quench-depth scaling as a powerful and precise experimental benchmark for nonequilibrium quantum critical dynamics.