Xi Qin

Quantum Simulation of Oscillatory Unruh Effect with Superposed Trajectories

Xu Cheng [1,2], Yue Li [1], Zehua Tian [3,1], Xingyu Zhao [1], Xi Qin [1,2], Yiheng Lin [1,4,2]

Abstract

The Unruh effect predicts an astonishing phenomenon that an accelerated detector would detect counts despite being in a quantum field vacuum in the rest frame. Since the required detector acceleration for its direct observation is prohibitively large, recent analog studies on quantum simulation platforms help to reveal various properties of the Unruh effect and explore the not-yet-understood physics of quantum gravity. To further reveal the quantum aspect of the Unruh effect, analogous experimental exploration of the correlation between the detector and the field, and the consequences for coherent quantum trajectories of the detector without classical counterparts, are essential steps but are currently missing. Here, we utilize a laser-controlled trapped ion to experimentally simulate an oscillating detector coupled with a cavity field. We observe joint excitation of both the detector and the field in the detector's frame, coincide with the coordinated dynamics predicted by the Unruh effect. Particularly, we simulate the detector moving in single and superposed quantum trajectories, where the latter case shows coherent interference of excitation. Our demonstration reveals properties of quantum coherent superposition of accelerating trajectories associated with quantum gravity theories that have no classical counterparts, and may offer a new avenue to investigate phenomena in quantum field theory and quantum gravity. We also show how a generalization of the method and results in this work may be beneficial for direct observation of the Unruh effect.

Programmable simulation of high-order exceptional point with a trapped ion

Yue Li [1,2], Yang Wu [1,2], Yuqi Zhou [1,2], Mengxiang Zhang [1,2], Xingyu Zhao [1,2,3], Yibo Yuan [1,2,3], Xu Cheng [1,2,3], Yi Li [1,2,3], Xi Qin [1,2,3], Xing Rong [1,2,3], Yiheng Lin [1,2,3], Jiangfeng Du [1,2,3,4]

Abstract

The nontrivial degeneracies in non-Hermitian systems, exceptional points (EPs), have attracted extensive attention due to intriguing phenomena. Compared with commonly observed second-order EPs, high-order EPs show rich physics due to their extended dimension and parameter space, ranging from the coalescence of EPs into higher order to potential applications in topological properties. However, these features also pose challenges in controlling multiple coherent and dissipative elements in a scaled system. Here we experimentally demonstrate a native programmable control to simulate a high-order non-Hermitian Hamiltonian in a multi-dimensional trapped ion system. We simulate a series of non-Hermitian systems with varied parameters and observe the coalescence of second-order EPs into a fourth-order EP. Our results pave the way for scalable quantum simulation of high-dimensional dissipative systems and can be beneficial for the application of high-order EPs in quantum sensing and quantum control.

Multi-parameter quantum metrology with stabilized multi-mode squeezed state

Yue Li [1,2], Xu Cheng [1,2,3], Lingna Wang [4], Xingyu Zhao [1,2,3], Waner Hou [1,2], Yi Li [1,2], Kamran Rehan [1,2], Mingdong Zhu [1,2], Lin Yan [1,2], Xi Qin [1,2,3], Xinhua Peng [1,2,3], Haidong Yuan [4], Yiheng Lin [1,2,3], Jiangfeng Du [1,2,3,5]

Abstract

Squeezing a quantum state along a specific direction has long been recognized as a crucial technique for enhancing the precision of quantum metrology by reducing parameter uncertainty. However, practical quantum metrology often involves the simultaneous estimation of multiple parameters, necessitating the use of high-quality squeezed states along multiple orthogonal axes to surpass the standard quantum limit for all relevant parameters. In addition, a temporally stabilized squeezed state can provide an event-ready probe for parameters, regardless of the initial state, and robust to the timing of the state preparation process once stabilized. In this work, we generate and stabilize a two-mode squeezed state along two secular motional modes in a vibrating trapped ion with reservoir engineering, despite starting from a thermal state of the motion. Leveraging this resource, we demonstrate an estimation of two simultaneous collective displacements along the squeezed axes, achieving improvements surpassing the classical limit by up to 6.9(3) and 7.0(3) decibels (dB), respectively. Our demonstration can be readily scaled to squeezed states with even more modes. The practical implications of our findings span a wide range of applications, including quantum sensing, quantum imaging, and various fields that demand precise measurements of multiple parameters.

Preserving multi-level quantum coherence by dynamical decoupling

Xinxing Yuan [1,2], Yue Li [1,2], Mengxiang Zhang [1,2], Chang Liu [1,2], Mingdong Zhu [1,2], Xi Qin [1,2], Nikolay V. Vitanov [3], Yiheng Lin [1,2], Jiangfeng Du [1,2]

Abstract

Quantum information processing with multi-level systems (qudits) provides additional features and applications than the two-level systems. However, qudits are more prone to dephasing and dynamical decoupling for qudits has never been experimentally demonstrated. Here, as a proof-of-principle demonstration, we experimentally apply dynamical decoupling to protect superpositions with three levels of a trapped $^9\rm{Be}^+$ ion from ambient noisy magnetic field, prolonging coherence by up to approximately an order of magnitude. Our demonstration, straightforwardly scalable to more levels, may open up a path toward long coherence quantum memory, metrology and information processing with qudits.

Observation of spin-tensor induced topological phase transitions of triply degenerate points with a trapped ion

Mengxiang Zhang [1,2], Xinxing Yuan [1,2], Xi-Wang Luo [3,2], Chang Liu [1,2], Yue Li [1,2], Mingdong Zhu [1,2], Xi Qin [1,2], Yiheng Lin [1,2], Jiangfeng Du [1,2]

Abstract

Triply degenerate points (TDPs), which correspond to new types of topological semimetals, can support novel quasiparticles possessing effective integer spins while preserving Fermi statistics. Here by mapping the momentum space to the parameter space of a three-level system in a trapped ion, we experimentally explore the transitions between different types of TDPs driven by spin-tensor--momentum couplings. We observe the phase transitions between TDPs with different topological charges by measuring the Berry flux on a loop surrounding the gap-closing lines, and the jump of the Berry flux gives the jump of the topological charge (up to a $2π$ factor) across the transitions. For the Berry flux measurement, we employ a new method by examining the geometric rotations of both spin vectors and tensors, which lead to a generalized solid angle equal to the Berry flux. The controllability of multi-level ion offers a versatile platform to study high-spin physics and our work paves the way to explore novel topological phenomena therein.

Experimental Demonstration of Swift Analytical Universal Control over Nearby Transitions

Yue Li [1,2], Zhi-Cheng He [3], Xinxing Yuan [1,2], Mengxiang Zhang [1,2], Chang Liu [1,2], Yi-Xuan Wu [3], Mingdong Zhu [1,2], Xi Qin [1,2], Zheng-Yuan Xue [3,4], Yiheng Lin [1,2], Jiangfeng Du [1,2]

Abstract

Along with the scaling of dimensions in quantum systems, transitions between the system's energy levels would become close in frequency, which are conventionally resolved by weak and lengthy pulses. Here, we extend and experimentally demonstrate analytically based swift quantum control techniques on a four-level trapped ion system, where we perform individual or simultaneous control over two pairs of spectrally nearby transitions with tailored time-varied drive, achieving operational fidelities ranging from 99.2(3)\% to 99.6(3)\%. Remarkably, we achieve approximately an order of magnitude speed up comparing with the case of weak square pulse for a general control. Therefore, our demonstration may be beneficial to a broad range of quantum systems with crowded spectrum, for spectroscopy, quantum information processing and quantum simulation.