4.6 Article

Is terahertz emission a good probe of the spin current attenuation length?

期刊

APPLIED PHYSICS LETTERS
卷 121, 期 1, 页码 -

出版社

AIP Publishing
DOI: 10.1063/5.0097448

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资金

  1. ANR Project [ANR-20-CE24-0003 SPOTZ, ANR-20-CE09-0013 UFO]
  2. French PIA [ANR-15IDEX-04-LUE]
  3. ANR [ANR-20-CE24-0003 SPOTZ, ANR-20-CE09-0013 UFO]
  4. French PIA project Lorraine Universite d'Excellence [LUE-N4S]
  5. Region Grand Est and the Metropole Grand Nancy for the Chaire PLUS [ANR-15IDEX-04-LUE]
  6. FEDER-FSE Lorraine et Massif Vosges 2014-2020, a European Union Program
  7. Agence Nationale de la Recherche (ANR) [ANR-20-CE24-0003, ANR-20-CE09-0013] Funding Source: Agence Nationale de la Recherche (ANR)

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THz emission from magnetic films is an important characterization tool for spintronic properties, but extracting absolute numbers remains extremely challenging due to the complex conversion mechanisms and high sensitivity to changes in optical properties.
Terahertz (THz) emission from magnetic films has recently become an important characterization tool of spintronic properties, particularly since no patterning is required. One such property of interest is the spin-current attenuation length. When separating a magnetic film from a spin-to-charge converter with a light metal, the emitted intensity reduces almost exponentially with the thickness of the spacer. However, the extracted characteristic length is more than an order of magnitude smaller than the spin diffusion length measured in equilibrium. In this work, we experimentally and theoretically demonstrate that most of the observed decay in the THz emission is of optical (THz) origin. We are able to estimate a spin current attenuation length for Cu of similar to 50 nm in much closer agreement with spin diffusion length measurements. We conclude that THz emission remains a powerful characterization technique, but due to the high number of intricate conversion mechanisms, and most importantly, due to the high sensitivity to changes in the optical properties, extracting absolute numbers for spintronic phenomena remains extremely challenging. Published under an exclusive license by AIP Publishing.

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