<p>Optical lattice clocks are at the forefront of precision metrology<sup><CitationRef AdditionalCitationIDS="CR2 CR3 CR4 CR5" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR6">6</CitationRef></sup>, operating near a standard quantum limit set by quantum noise<sup><CitationRef CitationID="CR4">4</CitationRef>,<CitationRef CitationID="CR7">7</CitationRef></sup>. Harnessing quantum entanglement offers a promising route to surpass this limit<sup><CitationRef AdditionalCitationIDS="CR9 CR10 CR11 CR12 CR13 CR14" CitationID="CR8">8</CitationRef>–<CitationRef CitationID="CR15">15</CitationRef></sup>; however, there are practical difficulties in terms of scalability and measurement resolution requirements<sup><CitationRef CitationID="CR16">16</CitationRef>,<CitationRef CitationID="CR17">17</CitationRef></sup>. Here we adapt the holonomic quantum gate concept<sup><CitationRef CitationID="CR18">18</CitationRef></sup> to develop a new Rabi-type ‘global-phase spectroscopy’ that uses the detuning-sensitive global Aharonov–Anandan phase<sup><CitationRef CitationID="CR19">19</CitationRef></sup>. With this approach, we can demonstrate quantum-amplified time-reversal spectroscopy on an optical clock transition that achieves directly measured 2.4(7) dB metrological gain and 4.0(8) dB improvement in laser noise sensitivity beyond the standard quantum limit. To this end, we introduce rotary echo to protect the dynamics from inhomogeneities in light–atom coupling and implement a laser-noise-cancelling differential measurement through symmetric phase encoding in two nuclear spin states. Our technique is not limited by measurement resolution, scales easily because of the global nature of entangling interaction and exhibits high resilience to typical experimental imperfections. We expect it to be broadly applicable to next-generation atomic clocks and other quantum sensors approaching the fundamental quantum precision limits<sup><CitationRef AdditionalCitationIDS="CR21" CitationID="CR20">20</CitationRef>–<CitationRef CitationID="CR22">22</CitationRef></sup>.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Quantum-amplified global-phase spectroscopy on an optical clock transition

  • Leon Zaporski,
  • Qi Liu,
  • Gustavo Velez,
  • Matthew Radzihovsky,
  • Zeyang Li,
  • Simone Colombo,
  • Edwin Pedrozo-Peñafiel,
  • Vladan Vuletić

摘要

Optical lattice clocks are at the forefront of precision metrology16, operating near a standard quantum limit set by quantum noise4,7. Harnessing quantum entanglement offers a promising route to surpass this limit815; however, there are practical difficulties in terms of scalability and measurement resolution requirements16,17. Here we adapt the holonomic quantum gate concept18 to develop a new Rabi-type ‘global-phase spectroscopy’ that uses the detuning-sensitive global Aharonov–Anandan phase19. With this approach, we can demonstrate quantum-amplified time-reversal spectroscopy on an optical clock transition that achieves directly measured 2.4(7) dB metrological gain and 4.0(8) dB improvement in laser noise sensitivity beyond the standard quantum limit. To this end, we introduce rotary echo to protect the dynamics from inhomogeneities in light–atom coupling and implement a laser-noise-cancelling differential measurement through symmetric phase encoding in two nuclear spin states. Our technique is not limited by measurement resolution, scales easily because of the global nature of entangling interaction and exhibits high resilience to typical experimental imperfections. We expect it to be broadly applicable to next-generation atomic clocks and other quantum sensors approaching the fundamental quantum precision limits2022.