arXiv · 2605.26377
Single-Ensemble Multiparameter Squeezing with Qudits
Abstract
Conventional spin squeezing enhances a single sensing channel. Here, we show how internal qudit levels enable simultaneous multiparameter squeezing within one ensemble. In two-component magnetometry, a qutrit sensor provides two orthogonal and weakly compatible channels. A collective twisting interaction squeezes both responses while preserving joint attainability of the ultimate sensitivity. The sensing gain is quantified by using a matrix generalization of the Wineland sensitivity that retains both noise correlations and cross-channel response. An interaction-based echo amplifies the signal to overcome noise from a fixed local joint readout, yielding a simulated $13~\mathrm{dB}$ gain over the product-state standard quantum limit for $N=128$ qutrits. More generally, we use the single-site quantum Fisher information matrix to select reference states and channel quadratures for prescribed sensing tasks. The tangent geometry permits at most $d-1$ independent, weakly compatible channels around a common pure reference state for a $d$-level sensor. Our work provides a constructive task-to-protocol map for multiparameter squeezing in a single qudit ensemble.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Xiaoshui Lin, Chunlei Qu, Chong Zu, Chuanwei Zhang. 2026-09-19. Single-Ensemble Multiparameter Squeezing with Qudits. https://arxiv.org/abs/2605.26377
Cite the original work for its findings. Save a collection to share your selection of sources.