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Apparent delocalization of the current density in metallic wires observed with diamond nitrogen-vacancy magnetometry

journal contribution
posted on 2024-11-02, 13:14 authored by Jean-Philippe TetienneJean-Philippe Tetienne, Nikolai Dontschuk, David BroadwayDavid Broadway, Scott Lillie, Tokuyuki Teraji, David Simpson, Alastair StaceyAlastair Stacey, Lloyd Hollenberg
We report on a quantitative analysis of the magnetic field generated by a continuous current running in metallic microwires fabricated on an electrically insulating diamond substrate. A layer of nitrogen-vacancy (NV) centers engineered near the diamond surface is employed to obtain spatial maps of the vector magnetic field, by measuring Zeeman shifts through optically detected magnetic resonance spectroscopy. The in-plane magnetic field (i.e., parallel to the diamond surface) is found to be significantly weaker than predicted, while the out-of-plane field also exhibits an unexpected modulation. We show that the measured magnetic field is incompatible with Ampère's circuital law or Gauss's law for magnetism when we assume that the current is confined to the metal, independent of the details of the current density. This result was reproduced in several diamond samples, with a measured deviation from Ampère's law by as much as 94(6)% (i.e., a 15σ violation). To resolve this apparent magnetic anomaly, we introduce a generalized description whereby the current is allowed to flow both above the NV sensing layer (including in the metallic wire) and below the NV layer (i.e., in the diamond). Inversion of the Biot-Savart law within this two-channel description leads to a unique solution for the two current densities that completely explains the data, is consistent with the laws of classical electrodynamics, and indicates a total NV-measured current that closely matches the electrically measured current. However, this description also leads to the surprising conclusion that in certain circumstances the majority of the current appears to flow in the diamond substrate rather than in the metallic wire, and to spread laterally in the diamond by several micrometers away from the wire. No electrical conduction was observed between nearby test wires, ruling out a conventional conductivity effect. Moreover, the apparent delocalization of the current

Funding

ARC Centre of Excellence for Quantum Computation and Communication Technology

Australian Research Council

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History

Related Materials

  1. 1.
    DOI - Is published in 10.1103/PhysRevB.99.014436
  2. 2.
    ISSN - Is published in 24699950

Journal

Physical Review B

Volume

99

Number

014436

Issue

1

Start page

1

End page

30

Total pages

30

Publisher

American Physical Society

Place published

United States

Language

English

Copyright

© 2019 American Physical Society.

Former Identifier

2006098771

Esploro creation date

2020-06-22

Fedora creation date

2020-05-12

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