Quantum control of nuclear spin qubits in a rapidly rotating diamond
- URL: http://arxiv.org/abs/2107.12577v1
- Date: Tue, 27 Jul 2021 03:39:36 GMT
- Title: Quantum control of nuclear spin qubits in a rapidly rotating diamond
- Authors: Alexander A. Wood, Russell M. Goldblatt, Robert E. Scholten and Andy
M. Martin
- Abstract summary: Nuclear spins in certain solids couple weakly to their environment, making them attractive candidates for quantum information processing and inertial sensing.
We demonstrate optical nuclear spin polarization and rapid quantum control of nuclear spins in a diamond physically rotating at $1,$kHz, faster than the nuclear spin coherence time.
Our work liberates a previously inaccessible degree of freedom of the NV nuclear spin, unlocking new approaches to quantum control and rotation sensing.
- Score: 62.997667081978825
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Nuclear spins in certain solids couple weakly to their environment, making
them attractive candidates for quantum information processing and inertial
sensing. When coupled to the spin of an optically-active electron, nuclear
spins can be rapidly polarized, controlled and read via lasers and
radiofrequency fields. Possessing coherence times of several milliseconds at
room temperature, nuclear spins hosted by a nitrogen-vacancy center in diamond
are thus intriguing systems to observe how classical physical rotation at
quantum timescales affects a quantum system. Unlocking this potential is
hampered by precise and inflexible constraints on magnetic field strength and
alignment in order to optically induce nuclear polarization, which restricts
the scope for further study and applications. In this work, we demonstrate
optical nuclear spin polarization and rapid quantum control of nuclear spins in
a diamond physically rotating at $1\,$kHz, faster than the nuclear spin
coherence time. Free from the need to maintain strict field alignment, we are
able to measure and control nuclear spins in hitherto inaccessible regimes,
such as in the presence of a large, time-varying magnetic field that makes an
angle of more than $100^\circ$ to the nitrogen-lattice vacancy axis. The field
induces spin mixing between the electron and nuclear states of the qubits,
decoupling them from oscillating rf fields. We are able to demonstrate that
coherent spin state control is possible at any point of the rotation, and even
for up to six rotation periods. We combine continuous dynamical decoupling with
quantum feedforward control to eliminate decoherence induced by imperfect
mechanical rotation. Our work liberates a previously inaccessible degree of
freedom of the NV nuclear spin, unlocking new approaches to quantum control and
rotation sensing.
Related papers
- Spin-orbit torque on nuclear spins exerted by a spin accumulation via
hyperfine interactions [49.1574468325115]
This article demonstrates that the hyperfine coupling, which consists of Fermi contact and dipolar interactions, can mediate the application of spin-orbit torques acting on nuclear spins.
The reactions to the equilibrium and nonequilibrium components of the spin density is a torque on the nucleus with field-like and damping-like components.
This nuclear spin-orbit torque is a step toward stabilizing and controlling nuclear magnetic momenta, in magnitude and direction, and realizing nuclear spintronics.
arXiv Detail & Related papers (2023-05-21T08:05:23Z) - All-Optical Nuclear Quantum Sensing using Nitrogen-Vacancy Centers in
Diamond [52.77024349608834]
Microwave or radio-frequency driving poses a significant limitation for miniaturization, energy-efficiency and non-invasiveness of quantum sensors.
We overcome this limitation by demonstrating a purely optical approach to coherent quantum sensing.
Our results pave the way for highly compact quantum sensors to be employed for magnetometry or gyroscopy applications.
arXiv Detail & Related papers (2022-12-14T08:34:11Z) - Decoupling Nuclear Spins via Interaction-Induced Freezing in Nitrogen
Vacancy Centers in Diamond [0.0]
Nitrogen-Vacancy (NV) centers in diamonds provide a room-temperature platform for emerging quantum technologies.
We demonstrate a freezing protocol for an NV center to isolate its intrinsic nuclear spin from a noisy electromagnetic environment.
arXiv Detail & Related papers (2022-04-08T07:01:51Z) - Tunable Gyromagnetic Augmentation of Nuclear Spins in Diamond [0.0]
This work identifies regimes in which we are able to implement fast quantum control of dark nuclear spins.
It lays the foundations for further inquiry into rapid control of long-lived spin qubits at room temperature.
arXiv Detail & Related papers (2021-09-28T06:14:51Z) - Demonstration of electron-nuclear decoupling at a spin clock transition [54.088309058031705]
Clock transitions protect molecular spin qubits from magnetic noise.
linear coupling to nuclear degrees of freedom causes a modulation and decay of electronic coherence.
An absence of quantum information leakage to the nuclear bath provides opportunities to characterize other decoherence sources.
arXiv Detail & Related papers (2021-06-09T16:23:47Z) - Anisotropic electron-nuclear interactions in a rotating quantum spin
bath [55.41644538483948]
Spin-bath interactions are strongly anisotropic, and rapid physical rotation has long been used in solid-state nuclear magnetic resonance.
We show that the interaction between electron spins of nitrogen-vacancy centers and a bath of $13$C nuclear spins introduces decoherence into the system.
Our findings offer new insights into the use of physical rotation for quantum control with implications for quantum systems having motional and rotational degrees of freedom that are not fixed.
arXiv Detail & Related papers (2021-05-16T06:15:00Z) - Spin-mechanics with nitrogen-vacancy centers and trapped particles [0.0]
We review recent experimental work in the field of spin-mechanics that employ the interaction between trapped particles and electronic spins in the solid state.
Our focus is on the theoretical background close to the current experiments, as well as on the experimental limits, that will enable these systems to unleash their full potential.
arXiv Detail & Related papers (2021-04-20T20:43:24Z) - Nuclear spin readout in a cavity-coupled hybrid quantum dot-donor system [0.0]
Nuclear spins show long coherence times and are well isolated from the environment.
We present a method for nuclear spin readout by probing the transmission of a microwave resonator.
arXiv Detail & Related papers (2020-12-02T16:51:50Z) - Quantum coherent spin-electric control in a molecular nanomagnet at
clock transitions [57.50861918173065]
Electrical control of spins at the nanoscale offers architectural advantages in spintronics.
Recent demonstrations of electric-field (E-field) sensitivities in molecular spin materials are tantalising.
E-field sensitivities reported so far are rather weak, prompting the question of how to design molecules with stronger spin-electric couplings.
arXiv Detail & Related papers (2020-05-03T09:27:31Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.