Quantum back action evading measurement of motion in a negative mass reference frame
Christoffer B. M{\o}ller, Rodrigo A. Thomas, Georgios Vasilakis, Emil, Zeuthen, Yeghishe Tsaturyan, Kasper Jensen, Albert Schliesser, Klemens, Hammerer, Eugene S. Polzik

TL;DR
This paper demonstrates that quantum back action on a macroscopic mechanical oscillator can be evaded by measuring in a negative mass reference frame, enabling advanced quantum sensing and communication.
Contribution
It introduces a hybrid system of a mechanical membrane and atomic spin oscillator with negative mass properties, showing back action evasion in a macroscopic setting.
Findings
Quantum back action is evaded in the negative mass setting.
Hybrid system enables entanglement and quantum communication.
Enhanced measurement sensitivity beyond the standard quantum limit.
Abstract
Quantum mechanics dictates that a continuous measurement of the position of an object imposes a random back action perturbation on its momentum. This randomness translates with time into position uncertainty, thus leading to the well known uncertainty on the measurement of motion. Here we demonstrate that the quantum back action on a macroscopic mechanical oscillator measured in the reference frame of an atomic spin oscillator can be evaded. The collective quantum measurement on this novel hybrid system of two distant and disparate oscillators is performed with light. The mechanical oscillator is a drum mode of a millimeter size dielectric membrane and the spin oscillator is an atomic ensemble in a magnetic field. The spin oriented along the field corresponds to an energetically inverted spin population and realizes an effective negative mass oscillator, while the opposite orientation…
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