Jia-Wei Wang

Finite-Time Electrometry with a Quantum-Regime Single-Ion Phonon Laser

Pei-Dong Li [1,2], Yuan-Zhang Dong [1,2], Zhuo-Zhu Wu [1,2], Jia-Wei Wang [1,2], Ji Li [3], Jian-Qi Zhang [1], Zhi-Jiao Deng [4], Liang Chen [1], Mang Feng [1,3,5,6]

Abstract

The phonon laser realized in a trapped ion, i.e., a self-sustained mechanical oscillator, has demonstrated the unique characteristics in practically detecting externally applied electric signals without the prerequisite of sideband cooling. Entering the quantum regime via sideband cooling is expected to further improve its sensing performance. Here we report the first experimental realization of a quantum-regime single-ion phonon laser ($\bar{n}<10$) using a trapped $^{40}\mathrm{Ca}^+$ ion and demonstrate electrometry based on its phase-space symmetry-breaking response to weak resonant electric fields. By tuning the phonon-laser parameters, we reveal that the sensing performance is fundamentally governed by the finite-time relaxation dynamics of the underlying open quantum system. We find that a slow Liouvillian relaxation, correlated with the finite experimental interaction window, effectively enhances the dynamic susceptibility while maintaining the structural robustness of the limit cycle. This regime, when applied to the detection of electric fields, produces a shot-noise-limited peak sensitivity of $14.15 \pm 0.77~μ\mathrm{V/m}/\sqrt{\mathrm{Hz}}$ and a minimum detectable field variation of $δE_{\mathrm{min}} \approx 1.83~μ\mathrm{V/m}$. Our results establish quantum phonon lasers as a practical platform for advanced sensing and highlight the central role of Liouvillian dynamics in non-equilibrium electrometry.

Enhanced detection of electric field signals via squeezing-induced stochastic resonance

Ya-Qi Wei [1,2,3], Tai-Hao Cui [3,4], Quan Yuan [5,3], Pei-Dong Li [3,4], Yuan-Zhang Dong [3,4], Zhuo-Zhu Wu [3,4], Ji Li [6], Jia-Wei Wang [3,4], Fei Zhou [3], Ming-Xiao Li [1,2], Liang Chen [3], Zhu-Jun Zheng [1,2], Mang Feng [3,6,7,8]

Abstract

Stochastic resonance (SR) could amplify weak electric-field signals in nonlinear systems by means of the externally injected noises. Here we propose and experimentally demonstrate a modified SR method, termed squeezing-induced SR, implemented in the system involving a trapped ion behaving as a Duffing oscillator. We find that squeezing the phase noise of the oscillator results in amplified fluctuation of the corresponding amplitude, which helps achieve the SR. Since no auxiliary noise source is needed, the squeezing-induced SR may enhance the signal-to-noise ratio by 4.28 $\pm$ 0.39 dB compared to the conventional noise-induced SR under identical conditions of the electric-field detection. This technique offers a promising approach for developing atomic ion sensors for detecting weak electric-field signals.

Experimental Witness of Quantum Jump Induced High-Order Liouvillian Exceptional Points

Zhuo-Zhu Wu [1,2], Pei-Dong Li [1,2], Tai-Hao Cui [1,2], Jia-Wei Wang [1,2], Yuan-Zhang Dong [1,2], Shuang-Qing Dai [1,2], Ji Li [3], Ya-Qi Wei [4], Quan Yuan [5], Xiao-Ming Cai [1], Liang Chen [1], Jian-Qi Zhang [1], Hui Jing [6,7], Mang Feng [1,3,6,8]

Abstract

The exceptional point has presented considerably interesting and counterintuitive phenomena associated with nonreciprocity, precision measurement, and topological dynamics. The Liouvillian exceptional point (LEP), involving the interplay of energy loss and decoherence inherently relevant to quantum jumps, has recently drawn much attention due to capability to fully capture quantum system dynamics and naturally facilitate non-Hermitian quantum investigations. It was also predicted that quantum jumps could give rise to third-order LEPs in two-level quantum systems for its high dimensional Liouvillian superoperator, which, however, has never been experimentally confirmed until now. Here we report the first observation of the third-order LEPs emerging from quantum jumps in an ultracold two-level trapped-ion system. Moreover, by combining decay with dephasing processes, we present the first experimental exploration of LEPs involving combinatorial effect of decay and dephasing. In particular, due to non-commutativity between the Lindblad superoperators governing LEPs for decay and dephasing, we witness the movement of LEPs driven by the competition between decay and dephasing occurring in an open quantum system. This unique feature of non-Hermitian quantum systems paves a new avenue for modifying nonreciprocity, enhancing precision measurement, and manipulating topological dynamics by tuning the LEPs.