Details
Originalsprache | Englisch |
---|---|
Seiten (von - bis) | 191-195 |
Seitenumfang | 5 |
Fachzeitschrift | Nature |
Jahrgang | 547 |
Ausgabenummer | 7662 |
Publikationsstatus | Veröffentlicht - 13 Juli 2017 |
Abstract
Quantum mechanics dictates that a continuous measurement of the position of an object imposes a random quantum back-Action (QBA) perturbation on its momentum. This randomness translates with time into position uncertainty, thus leading to the well known uncertainty on the measurement of motion. As a consequence of this randomness, and in accordance with the Heisenberg uncertainty principle, the QBA puts a limitation-the so-called standard quantum limit-on the precision of sensing of position, velocity and acceleration. Here we show that QBA on a macroscopic mechanical oscillator can be evaded if the measurement of motion is conducted in the reference frame of an atomic spin oscillator. The collective quantum measurement on this hybrid system of two distant and disparate oscillators is performed with light. The mechanical oscillator is a vibrational â € drum' mode of a millimetre-sized 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 a negative-effective-mass oscillator, while the opposite orientation corresponds to an oscillator with positive effective mass. The QBA is suppressed by â '1.8 decibels in the negative-mass setting and enhanced by 2.4 decibels in the positive-mass case. This hybrid quantum system paves the way to entanglement generation and distant quantum communication between mechanical and spin systems and to sensing of force, motion and gravity beyond the standard quantum limit.
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in: Nature, Jahrgang 547, Nr. 7662, 13.07.2017, S. 191-195.
Publikation: Beitrag in Fachzeitschrift › Artikel › Forschung › Peer-Review
}
TY - JOUR
T1 - Quantum back-Action-evading measurement of motion in a negative mass reference frame
AU - Møller, Christoffer B.
AU - Thomas, Rodrigo A.
AU - Vasilakis, Georgios
AU - Zeuthen, Emil
AU - Tsaturyan, Yeghishe
AU - Balabas, Mikhail
AU - Jensen, Kasper
AU - Schliesser, Albert
AU - Hammerer, Klemens
AU - Polzik, Eugene S.
PY - 2017/7/13
Y1 - 2017/7/13
N2 - Quantum mechanics dictates that a continuous measurement of the position of an object imposes a random quantum back-Action (QBA) perturbation on its momentum. This randomness translates with time into position uncertainty, thus leading to the well known uncertainty on the measurement of motion. As a consequence of this randomness, and in accordance with the Heisenberg uncertainty principle, the QBA puts a limitation-the so-called standard quantum limit-on the precision of sensing of position, velocity and acceleration. Here we show that QBA on a macroscopic mechanical oscillator can be evaded if the measurement of motion is conducted in the reference frame of an atomic spin oscillator. The collective quantum measurement on this hybrid system of two distant and disparate oscillators is performed with light. The mechanical oscillator is a vibrational â € drum' mode of a millimetre-sized 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 a negative-effective-mass oscillator, while the opposite orientation corresponds to an oscillator with positive effective mass. The QBA is suppressed by â '1.8 decibels in the negative-mass setting and enhanced by 2.4 decibels in the positive-mass case. This hybrid quantum system paves the way to entanglement generation and distant quantum communication between mechanical and spin systems and to sensing of force, motion and gravity beyond the standard quantum limit.
AB - Quantum mechanics dictates that a continuous measurement of the position of an object imposes a random quantum back-Action (QBA) perturbation on its momentum. This randomness translates with time into position uncertainty, thus leading to the well known uncertainty on the measurement of motion. As a consequence of this randomness, and in accordance with the Heisenberg uncertainty principle, the QBA puts a limitation-the so-called standard quantum limit-on the precision of sensing of position, velocity and acceleration. Here we show that QBA on a macroscopic mechanical oscillator can be evaded if the measurement of motion is conducted in the reference frame of an atomic spin oscillator. The collective quantum measurement on this hybrid system of two distant and disparate oscillators is performed with light. The mechanical oscillator is a vibrational â € drum' mode of a millimetre-sized 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 a negative-effective-mass oscillator, while the opposite orientation corresponds to an oscillator with positive effective mass. The QBA is suppressed by â '1.8 decibels in the negative-mass setting and enhanced by 2.4 decibels in the positive-mass case. This hybrid quantum system paves the way to entanglement generation and distant quantum communication between mechanical and spin systems and to sensing of force, motion and gravity beyond the standard quantum limit.
UR - http://www.scopus.com/inward/record.url?scp=85024406612&partnerID=8YFLogxK
U2 - 10.1038/nature22980
DO - 10.1038/nature22980
M3 - Article
C2 - 28703182
AN - SCOPUS:85024406612
VL - 547
SP - 191
EP - 195
JO - Nature
JF - Nature
SN - 0028-0836
IS - 7662
ER -