4.7 Article

Engineering the spin conversion in graphene monolayer epitaxial structures

期刊

APL MATERIALS
卷 9, 期 6, 页码 -

出版社

AIP Publishing
DOI: 10.1063/5.0048612

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资金

  1. Regional Government of Madrid [P2018/NMT-4321, PEJD-2019-POST/IND-15343]
  2. Spanish Ministry of Economy and Competitiveness (MINECO) [RTI2018-097895-B-C42, RTI2018-097895-B-C43, PGC2018-098613-B-C21, PGC2018-098265-B-C31, PCI2019-111867-2]
  3. MINECO [BES-2017-080617]
  4. CM [PEJD-2017-PREIND-4690]
  5. Severo Ochoa Program for Centres of Excellence in RD, MINECO [SEV-2016-0686]
  6. Toptronic ANR [ANR-19-CE24-0016-01]
  7. [MAT2017-82970-C2-R]
  8. Agence Nationale de la Recherche (ANR) [ANR-19-CE24-0016] Funding Source: Agence Nationale de la Recherche (ANR)

向作者/读者索取更多资源

The study shows that a graphene monolayer between Co and a heavy metal (HM) can effectively preserve the spin current injected into the HM from the bottom Co layer, as revealed by thermo-spin measurements. The presence of the graphene monolayer leads to a reduction in the sum of spin Seebeck and interfacial contributions, independent of the spin Hall angle sign of the HM used.
Spin Hall and Rashba-Edelstein effects, which are spin-to-charge conversion phenomena due to spin-orbit coupling (SOC), are attracting increasing interest as pathways to manage rapidly and at low consumption cost the storage and processing of a large amount of data in spintronic devices as well as more efficient energy harvesting by spin-caloritronics devices. Materials with large SOC, such as heavy metals (HMs), are traditionally employed to get large spin-to-charge conversion. More recently, the use of graphene (gr) in proximity with large SOC layers has been proposed as an efficient and tunable spin transport channel. Here, we explore the role of a graphene monolayer between Co and a HM and its interfacial spin transport properties by means of thermo-spin measurements. The gr/HM (Pt and Ta) stacks have been prepared on epitaxial Ir(111)/Co(111) structures grown on sapphire crystals, in which the spin detector (i.e., top HM) and the spin injector (i.e., Co) are all grown in situ under controlled conditions and present clean and sharp interfaces. We find that a gr monolayer retains the spin current injected into the HM from the bottom Co layer. This has been observed by detecting a net reduction in the sum of the spin Seebeck and interfacial contributions due to the presence of gr and independent from the spin Hall angle sign of the HM used. (c) 2021 Author(s).

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