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  Quantum spin stabilized magnetic levitation in the presence of dissipation. (submitted to Phys. Rev. B)

Kustura, K., Wachter, V., López, A. E. R., & Rusconi, C. C. (submitted). Quantum spin stabilized magnetic levitation in the presence of dissipation. (submitted to Phys. Rev. B).

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Genre: Preprint
Andere : Preprint arXiv: 2106.14858 Submitted on 28 Jun 2021

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2106.14858v1 (Preprint), 2MB
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 Urheber:
Kustura, Katja, Autor
Wachter, Vanessa, Autor
López, Adrián E. Rubio, Autor
Rusconi, Cosimo Carlo1, 2, Autor           
Affiliations:
1Theory, Max Planck Institute of Quantum Optics, Max Planck Society, ou_1445571              
2MCQST - Munich Center for Quantum Science and Technology, External Organizations, ou_3330166              

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Schlagwörter: Condensed Matter, Mesoscale and Nanoscale Physics, cond-mat.mes-hall
 Zusammenfassung: In the absence of dissipation a non-rotating magnetic nanoparticle can be stably levitated in a static magnetic field as a consequence of the spin origin of its magnetization. Here, we study the effects of dissipation on the stability of the system, considering the interaction with the background gas and the intrinsic Gilbert damping of magnetization dynamics. We find that dissipation limits the time over which a particle can be stably levitated. At large applied magnetic fields we identify magnetization switching induced by Gilbert damping as the key limiting factor for stable levitation. At low applied magnetic fields and for small particle dimensions magnetization switching is prevented due to the strong coupling of rotation and magnetization dynamics, and the stability is mainly limited by the gas-induced dissipation. In this latter case, high vacuum should be sufficient to extend stable levitation over experimentally relevant timescales. Our results demonstrate the possibility to experimentally observe the phenomenon of quantum spin stabilized magnetic levitation.

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Sprache(n): eng - English
 Datum: 2021-06-28
 Publikationsstatus: Eingereicht
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 Identifikatoren: arXiv: 2106.14858v1
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Projektname : ERC Advanced Grant QENOCOBA
Grant ID : 742102
Förderprogramm : EU Horizon 2020 program
Förderorganisation : European Commission (EC)

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