Quantum matter in ultrahigh magnetic fields
- URL: http://arxiv.org/abs/2103.09155v1
- Date: Tue, 16 Mar 2021 15:52:05 GMT
- Title: Quantum matter in ultrahigh magnetic fields
- Authors: N. P. Ong and Lu Li
- Abstract summary: Survey is to provide a survey of a subset of discoveries from recent experiments performed on quantum matter in high magnetic fields.
Second goal is to discuss the comparative merits of two options: a pulsed-field facility for attaining magnetic field of 150 Tesla (of 1-10 msec) or a DC field facility facility facility facility.
- Score: 8.166491386806289
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: In writing this report we had two goals in mind. The first is to provide a
survey of a subset of discoveries from recent experiments performed on quantum
matter in high magnetic fields, and to anticipate the scientific opportunities
to be realized in even higher fields. Hopefully, the survey will convey a sense
of the excitement and pace of high-magnetic-field research in the
quantum-matter community to a broader audience (undergraduates, especially).
The second goal is to discuss the comparative merits of two options: a
pulsed-field facility for attaining a magnetic field of 150 Tesla (of duration
1-10 msec) or a DC field facility that attains 60 Tesla. A workshop involving
leading scientists involved with quantum phenomena in high magnetic fields was
held at NSF, Alexandria Sep. 21,22 (2017) to address these issues.
Related papers
- Quantum technologies for fundamental (HE) physics [0.0]
I will focus on the detection of dark matter and gravitational waves.
I will introduce ideas from atomic clocks and magnetometers, large atomic interferometers and detection of small fields in electromagnetic cavities.
arXiv Detail & Related papers (2023-11-16T20:33:03Z) - Experimental signatures of quantum and topological states in frustrated
magnetism [0.21766826415827592]
Frustration in magnetic materials can lead to a diverse range of novel quantum and topological states with exotic quasiparticle excitations.
We review prominent examples of such emergent phenomena, including magnetically-disordered and extensively degenerate spin ices.
We highlight experimental signatures of these often elusive phenomena and single out the most suitable experimental techniques that can be used to detect them.
arXiv Detail & Related papers (2023-10-23T16:29:06Z) - Quantum Science and the Search for Axion Dark Matter [91.3755431537592]
The dark matter puzzle is one of the most important open problems in modern physics.
Numerous precision experiments are searching for the three non-gravitational interactions of axion-like dark matter.
arXiv Detail & Related papers (2023-04-24T02:52:56Z) - Sensing of magnetic field effects in radical-pair reactions using a
quantum sensor [50.591267188664666]
Magnetic field effects (MFE) in certain chemical reactions have been well established in the last five decades.
We employ elaborate and realistic models of radical-pairs, considering its coupling to the local spin environment and the sensor.
For two model systems, we derive signals of MFE detectable even in the weak coupling regime between radical-pair and NV quantum sensor.
arXiv Detail & Related papers (2022-09-28T12:56:15Z) - Snowmass 2021: Quantum Sensors for HEP Science -- Interferometers,
Mechanics, Traps, and Clocks [0.0]
We focus on sensing with atomic interferometers, mechanical devices read out with optical or microwave fields, and precision spectroscopic methods.
We give a variety of detection targets relevant to particle physics for which these systems are uniquely poised to contribute.
arXiv Detail & Related papers (2022-03-14T16:29:19Z) - MAQRO -- BPS 2023 Research Campaign Whitepaper [1.0876499088493214]
The proposed MAQRO mission is to harness space for achieving long free-fall times, extreme vacuum, nano-gravity, and cryogenic temperatures.
The proposed research campaign aims to advance the state of the art and to perform the first macroscopic quantum experiments in space.
arXiv Detail & Related papers (2022-02-03T11:34:26Z) - Local quantum uncertainty of two gravitational cat states in
inhomogeneous magnetic field [0.0]
This paper investigates the local quantum correlations (LQU) of two gravitational cat states subjected to an inhomogeneous magnetic field.
Temperature, magnetic field, and magnetic field inhomogeneity may all play a role in determining the degree of intricacy between the gravcats.
arXiv Detail & Related papers (2021-10-04T08:10:03Z) - Spin Entanglement and Magnetic Competition via Long-range Interactions
in Spinor Quantum Optical Lattices [62.997667081978825]
We study the effects of cavity mediated long range magnetic interactions and optical lattices in ultracold matter.
We find that global interactions modify the underlying magnetic character of the system while introducing competition scenarios.
These allow new alternatives toward the design of robust mechanisms for quantum information purposes.
arXiv Detail & Related papers (2020-11-16T08:03:44Z) - Circuit Quantum Electrodynamics [62.997667081978825]
Quantum mechanical effects at the macroscopic level were first explored in Josephson junction-based superconducting circuits in the 1980s.
In the last twenty years, the emergence of quantum information science has intensified research toward using these circuits as qubits in quantum information processors.
The field of circuit quantum electrodynamics (QED) has now become an independent and thriving field of research in its own right.
arXiv Detail & Related papers (2020-05-26T12:47:38Z) - 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) - Direct control of high magnetic fields for cold atom experiments based
on NV centers [50.591267188664666]
In cold atomic gases the interactions between the atoms are directly controllable through external magnetic fields.
Here, we overcome the limitations of such an indirect control through a direct feedback scheme.
We achieve a control of better than 1 ppm after 20 minutes of integration time, ensuring high long-term stability for experiments.
arXiv Detail & Related papers (2020-03-18T09:03:25Z)
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.