Room-temperature defect-engineered spin filter based on a non-magnetic semiconductor

Generating, manipulating and detecting electron spin polarization and coherence at room temperature is at the heart of future spintronics and spin-based quantum information technology. Spin filtering, which is a key issue for spintronic applications, has been demonstrated by using ferromagnetic meta...

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Published inNature materials Vol. 8; no. 3; pp. 198 - 202
Main Authors Buyanova, I. A, Chen, W. M, Wang, X. J, Zhao, F, Lagarde, D, Balocchi, A, Marie, X, Tu, C. W, Harmand, J. C
Format Journal Article
LanguageEnglish
Published London Nature Publishing Group UK 01.03.2009
Nature Publishing Group
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Abstract Generating, manipulating and detecting electron spin polarization and coherence at room temperature is at the heart of future spintronics and spin-based quantum information technology. Spin filtering, which is a key issue for spintronic applications, has been demonstrated by using ferromagnetic metals, diluted magnetic semiconductors, quantum point contacts, quantum dots, carbon nanotubes, multiferroics and so on. This filtering effect was so far restricted to a limited efficiency and primarily at low temperatures or under a magnetic field. Here, we provide direct and unambiguous experimental proof that an electron-spin-polarized defect, such as a Gai self-interstitial in dilute nitride GaNAs, can effectively deplete conduction electrons with an opposite spin orientation and can thus turn the non-magnetic semiconductor into an efficient spin filter operating at room temperature and zero magnetic field. This work shows the potential of such defect-engineered, switchable spin filters as an attractive alternative to generate, amplify and detect electron spin polarization at room temperature without a magnetic material or external magnetic fields.
AbstractList Generating, manipulating and detecting electron spin polarization and coherence at room temperature is at the heart of future spintronics and spin-based quantum information technology. Spin filtering, which is a key issue for spintronic applications, has been demonstrated by using ferromagnetic metals, diluted magnetic semiconductors, quantum point contacts, quantum dots, carbon nanotubes, multiferroics and so on. This filtering effect was so far restricted to a limited efficiency and primarily at low temperatures or under a magnetic field. Here, we provide direct and unambiguous experimental proof that an electron-spin-polarized defect, such as a Ga(i) self-interstitial in dilute nitride GaNAs, can effectively deplete conduction electrons with an opposite spin orientation and can thus turn the non-magnetic semiconductor into an efficient spin filter operating at room temperature and zero magnetic field. This work shows the potential of such defect-engineered, switchable spin filters as an attractive alternative to generate, amplify and detect electron spin polarization at room temperature without a magnetic material or external magnetic fields.
The possibility of polarizing conducting charges in a material by blocking those with a specific spin direction could lead to efficient spintronic devices. It is now shown that spin polarized-defects in a non-magnetic semiconductor can deplete electrons with opposite spins and turn the semiconductor into an efficient spin filter operating at room temperature. Generating, manipulating and detecting electron spin polarization and coherence at room temperature is at the heart of future spintronics and spin-based quantum information technology 1 , 2 , 3 , 4 . Spin filtering, which is a key issue for spintronic applications, has been demonstrated by using ferromagnetic metals 5 , 6 , 7 , 8 , diluted magnetic semiconductors 9 , 10 , quantum point contacts 11 , quantum dots 12 , carbon nanotubes 13 , multiferroics 14 and so on. This filtering effect was so far restricted to a limited efficiency and primarily at low temperatures or under a magnetic field. Here, we provide direct and unambiguous experimental proof that an electron-spin-polarized defect, such as a Ga i self-interstitial in dilute nitride GaNAs, can effectively deplete conduction electrons with an opposite spin orientation and can thus turn the non-magnetic semiconductor into an efficient spin filter operating at room temperature and zero magnetic field. This work shows the potential of such defect-engineered, switchable spin filters as an attractive alternative to generate, amplify and detect electron spin polarization at room temperature without a magnetic material or external magnetic fields.
The possibility of polarizing conducting charges in a material by blocking those with a specific spin direction could lead to efficient spintronic devices. It is now shown that spin polarized-defects in a non-magnetic semiconductor can deplete electrons with opposite spins and turn the semiconductor into an efficient spin filter operating at room temperature.
Generating, manipulating and detecting electron spin polarization and coherence at room temperature is at the heart of future spintronics and spin-based quantum information technology. Spin filtering, which is a key issue for spintronic applications, has been demonstrated by using ferromagnetic metals, diluted magnetic semiconductors, quantum point contacts, quantum dots, carbon nanotubes, multiferroics and so on. This filtering effect was so far restricted to a limited efficiency and primarily at low temperatures or under a magnetic field. Here, we provide direct and unambiguous experimental proof that an electron-spin-polarized defect, such as a Gai self-interstitial in dilute nitride GaNAs, can effectively deplete conduction electrons with an opposite spin orientation and can thus turn the non-magnetic semiconductor into an efficient spin filter operating at room temperature and zero magnetic field. This work shows the potential of such defect-engineered, switchable spin filters as an attractive alternative to generate, amplify and detect electron spin polarization at room temperature without a magnetic material or external magnetic fields.
Author Wang, X. J
Harmand, J. C
Zhao, F
Tu, C. W
Lagarde, D
Balocchi, A
Buyanova, I. A
Chen, W. M
Marie, X
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  surname: Buyanova
  fullname: Buyanova, I. A
  organization: Department of Physics, Chemistry and Biology, Linköping University
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  surname: Chen
  fullname: Chen, W. M
  organization: Department of Physics, Chemistry and Biology, Linköping University
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  givenname: X. J
  surname: Wang
  fullname: Wang, X. J
  organization: Department of Physics, Chemistry and Biology, Linköping University
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  givenname: F
  surname: Zhao
  fullname: Zhao, F
  organization: Université de Toulouse, LPCNO: INSA, UPS, CNRS
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  givenname: D
  surname: Lagarde
  fullname: Lagarde, D
  organization: Université de Toulouse, LPCNO: INSA, UPS, CNRS
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  surname: Balocchi
  fullname: Balocchi, A
  organization: Université de Toulouse, LPCNO: INSA, UPS, CNRS
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  givenname: X
  surname: Marie
  fullname: Marie, X
  organization: Université de Toulouse, LPCNO: INSA, UPS, CNRS
– sequence: 8
  givenname: C. W
  surname: Tu
  fullname: Tu, C. W
  organization: Department of Electrical and Computer Engineering, University of California
– sequence: 9
  givenname: J. C
  surname: Harmand
  fullname: Harmand, J. C
  organization: LPN, route de Noazay
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SSID ssj0021556
Score 2.3381047
Snippet Generating, manipulating and detecting electron spin polarization and coherence at room temperature is at the heart of future spintronics and spin-based...
The possibility of polarizing conducting charges in a material by blocking those with a specific spin direction could lead to efficient spintronic devices. It...
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SubjectTerms Biomaterials
Chemistry and Materials Science
Condensed Matter Physics
Conductivity
Electronics
Information technology
letter
Low temperature
Magnetic fields
Materials Science
Nanotechnology
NATURAL SCIENCES
NATURVETENSKAP
Optical and Electronic Materials
Semiconductors
Temperature
Title Room-temperature defect-engineered spin filter based on a non-magnetic semiconductor
URI http://dx.doi.org/10.1038/nmat2385
https://link.springer.com/article/10.1038/nmat2385
https://www.ncbi.nlm.nih.gov/pubmed/19219029
https://www.proquest.com/docview/222752907
https://search.proquest.com/docview/66941024
https://search.proquest.com/docview/743418863
https://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-17085
Volume 8
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