40 research outputs found
Search for ultralight dark matter with a frequency adjustable diamagnetic levitated sensor
Among several dark matter candidates, bosonic ultralight (sub meV) dark
matter is well motivated because it could couple to the Standard Model (SM) and
induce new forces. Previous MICROSCOPE and Eot Wash torsion experiments have
achieved high accuracy in the sub-1 Hz region, but at higher frequencies there
is still a lack of relevant experimental research. We propose an experimental
scheme based on the diamagnetic levitated micromechanical oscillator, one of
the most sensitive sensors for acceleration sensitivity below the kilohertz
scale. In order to improve the measurement range, we used the sensor whose
resonance frequency could be adjusted from 0.1Hz to 100Hz. The limits of the
coupling constant are improved by more than 10 times compared to previous
reports, and it may be possible to achieve higher accuracy by using the array
of sensors in the future
Generating Giant and Tunable Nonlinearity in a Macroscopic Mechanical Resonator from Chemical Bonding Force
Nonlinearity in macroscopic mechanical system plays a crucial role in a wide
variety of applications, including signal transduction and processing,
synchronization, and building logical devices. However, it is difficult to
generate nonlinearity due to the fact that macroscopic mechanical systems
follow the Hooke's law and response linearly to external force, unless strong
drive is used. Here we propose and experimentally realize a record-high
nonlinear response in macroscopic mechanical system by exploring the
anharmonicity in deforming a single chemical bond. We then demonstrate the
tunability of nonlinear response by precisely controlling the chemical bonding
interaction, and realize a cubic elastic constant of \mathversion{bold}, many orders of magnitude larger in strength
than reported previously. This enables us to observe vibrational bistate
transitions of the resonator driven by the weak Brownian thermal noise at 6~K.
This method can be flexibly applied to a variety of mechanical systems to
improve nonlinear responses, and can be used, with further improvements, to
explore macroscopic quantum mechanics
Coherence-protected Quantum Gate by Continuous Dynamical Decoupling in Diamond
To implement reliable quantum information processing, quantum gates have to
be protected together with the qubits from decoherence. Here we demonstrate
experimentally on nitrogen-vacancy system that by using continuous wave
dynamical decoupling method, not only the coherence time is prolonged by about
20 times, but also the quantum gates is protected for the duration of
controlling time. This protocol shares the merits of retaining the superiority
of prolonging the coherence time and at the same time easily combining with
quantum logic tasks. It is expected to be useful in task where duration of
quantum controlling exceeds far beyond the dephasing time.Comment: 5 pages, 4 figure