Multi-qubit gates and Schrödinger cat states in an optical clock.

Cao, Alec; Eckner, William J; Lukin Yelin, Theodor; Young, Aaron W; Jandura, Sven; Yan, Lingfeng; Kim, Kyungtae; Pupillo, Guido et al. · Nature · 2024

basic_science · Level V

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Abstract

Many-particle entanglement is a key resource for achieving the fundamental precision limits of a quantum sensor<sup>1</sup>. Optical atomic clocks<sup>2</sup>, the current state of the art in frequency precision, are a rapidly emerging area of focus for entanglement-enhanced metrology<sup>3-6</sup>. Augmenting tweezer-based clocks featuring microscopic control and detection<sup>7-10</sup> with the high-fidelity entangling gates developed for atom-array information processing<sup>11,12</sup> offers a promising route towards making use of highly entangled quantum states for improved optical clocks. Here we develop and use a family of multi-qubit Rydberg gates to generate Schrödinger cat states of the Greenberger-Horne-Zeilinger (GHZ) type with up to nine optical clock qubits in a programmable atom array. In an atom-laser comparison at sufficiently short dark times, we demonstrate a fractional frequency instability below the standard quantum limit (SQL) using GHZ states of up to four qubits. However, because of their reduced dynamic range, GHZ states of a single size fail to improve the achievable clock precision at the optimal dark time compared with unentangled atoms<sup>13</sup>. Towards overcoming this hurdle, we simultaneously prepare a cascade of varying-size GHZ states to perform unambiguous phase estimation over an extended interval<sup>14-17</sup>. These results demonstrate key building blocks for approaching Heisenberg-limited scaling of optical atomic clock precision.