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Room-temperature electron spin polarization exceeding 90% in an opto-spintronic semiconductor nanostructure via remote spin filtering

Huang, Yuqing (author)
Linköpings universitet,Biomolekylär och Organisk Elektronik,Tekniska fakulteten
Polojarvi, Ville (author)
Tampere Univ, Finland
Hiura, Satoshi (author)
Hokkaido Univ, Japan
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Höjer, Pontus (author)
Linköpings universitet,Elektroniska och fotoniska material,Tekniska fakulteten
Aho, Arto (author)
Tampere Univ, Finland
Isoaho, Riku (author)
Tampere Univ, Finland
Hakkarainen, Teemu (author)
Tampere Univ, Finland
Guina, Mircea (author)
Tampere Univ, Finland
Sato, Shino (author)
Hokkaido Univ, Japan
Takayama, Junichi (author)
Hokkaido Univ, Japan
Murayama, Akihiro (author)
Hokkaido Univ, Japan
Buyanova, Irina (author)
Linköpings universitet,Elektroniska och fotoniska material,Tekniska fakulteten
Chen, Weimin (author)
Linköpings universitet,Elektroniska och fotoniska material,Tekniska fakulteten
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 (creator_code:org_t)
2021-04-08
2021
English.
In: Nature Photonics. - : NATURE RESEARCH. - 1749-4885 .- 1749-4893. ; 15, s. 475-482
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • An exclusive advantage of semiconductor spintronics is its potential for opto-spintronics, which will allow integration of spin-based information processing/storage with photon-based information transfer/communications. Unfortunately, progress has so far been severely hampered by the failure to generate nearly fully spin-polarized charge carriers in semiconductors at room temperature. Here we demonstrate successful generation of conduction electron spin polarization exceeding 90% at room temperature without a magnetic field in a non-magnetic all-semiconductor nanostructure, which remains high even up to 110 degrees C. This is accomplished by remote spin filtering of InAs quantum-dot electrons via an adjacent tunnelling-coupled GaNAs spin filter. We further show that the quantum-dot electron spin can be remotely manipulated by spin control in the adjacent spin filter, paving the way for remote spin encoding and writing of quantum memory as well as for remote spin control of spin-photon interfaces. This work demonstrates the feasibility to implement opto-spintronic functionality in common semiconductor nanostructures. An electron spin polarization of 90% is achieved in a non-magnetic nanostructure at room temperature without magnetic field. This is accomplished by remote spin filtering of InAs quantum-dot electrons via an adjacent tunnelling-coupled GaNAs spin filter.

Subject headings

NATURVETENSKAP  -- Fysik -- Annan fysik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Other Physics Topics (hsv//eng)

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