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- 1. Phys. Rev. B 75, 085208 (2007) , “Clustering of vacancy defects in high-purity semi-insulating SiC”, R. Aavikko, K. Saarinen, F. Tuomisto, B. Magnusson, N. T. Son, and E. JanzénPositron lifetime spectroscopy was used to study native vacancy defects in semi-insulating silicon carbide. The material is shown to contain (i) vacancy clusters consisting of four to five missing atoms and (ii) Si-vacancy-related negatively charged defects. The total open volume bound to the... (Read more)
- 2. J. Appl. Phys. 99, 023523 (2006) , “Characterization of 6H-SiC surfaces after ion implantation and annealing using positron annihilation spectroscopy and atomic force microscopy”, G. Brauer, W. Anwand, W. Skorupa, S. Brandstetter, and C. TeichertSystematic slow positron implantation spectroscopy (SPIS) and atomic force microscopy studies of various 6H-SiC samples are presented to clarify the role of conductivity type, crystal quality, ion implantation (B+,Al+, and N+), and annealing (1.650 °C) in... (Read more)
- 3. Phys. Rev. B 73, 014111 (2006) , “Structure of SiO2/4H-SiC interface probed by positron annihilation spectroscopy”, M. Maekawa, A. Kawasuso, M. Yoshikawa, A. Miyashita, R. Suzuki, T. OhdairaThe structure of the SiO2/4H-SiC interface produced by dry oxidation has been studied using positron annihilation spectroscopy using energy-variable slow positron beams. Based on the Doppler broadening shape and wing parameter (S-W) correlation, the interface layer was... (Read more)
- 4. Phys. Rev. B 72, 45204 (2005) , “Electron-positron momentum distributions associated with isolated silicon vacancies in 3C-SiC”, A. Kawasuso, M. Yoshikawa, H. Itoh, T. Chiba, T. Higuchi, K. Betsuyaku, F. Redmann, R. Krause-RehbergTwo-dimensional angular correlation of annihilation radiation (2D-ACAR) and coincidence Doppler broadening (CDB) of annihilation radiation measurements have been performed on electron-irradiated n-type 3C-SiC in which isolated silicon vacancies are responsible for positron trapping.... (Read more)
- 5. Phys. Rev. B 71, 193204 (2005) , “Angular correlation of annihilation radiation associated with vacancy defects in electron-irradiated 6H-SiC”, A. Kawasuso, T. Chiba, T. HiguchiElectron-positron momentum distributions associated with vacancy defects in 6H-SiC after irradiation with 2-MeV electrons and annealing at 1000 °C have been studied using angular correlation of annihilation radiation measurements. It was confirmed that the above vacancy defects have... (Read more)
- 6. Phys. Rev. Lett. 89, 185501 (2002) , “Identification of Lattice Vacancies on the Two Sublattices of SiC”, A. A. Rempel, W. Sprengel, K. Blaurock, K. J. Reichle, J. Major, and H.-E. SchaeferThe identification of atomic defects in solids is of pivotal interest for understanding atomistic processes and solid state properties. Here we report on the exemplary identification of vacancies on each of the two sublattices of SiC by making use of (i) electron irradiation, (ii) measurements of... (Read more)
- 7. Appl. Phys. Lett. 79, 3950 (2001) , “Annealing behavior of vacancies and Z1/2 levels in electron-irradiated 4H–SiC studied by positron annihilation and deep-level transient spectroscopy”, A. Kawasuso, F. Redmann, R. Krause-Rehberg, M. Weidner, T. Frank, G. Pensl, P. Sperr, W. Triftshäuser, H. ItohAnnealing behavior of vacancies and the Z1/2 levels in n-type 4HSiC epilayers after 2 MeV electron irradiation has been studied using positron annihilation and deep-level transient spectroscopy. Isochronal annealing studies indicate that silicon vacancy-related defects... (Read more)
- 8. J. Appl. Phys. 90, 3377 (2001) , “Vacancies and deep levels in electron-irradiated 6H SiC epilayers studied by positron annihilation and deep level transient spectroscopy”, A. Kawasuso, F. Redmann, R. Krause-Rehberg, T. Frank, M. Weidner, G. Pensl, P. Sperr, H. ItohThe annealing behavior of defects in n-type 6H SiC epilayers irradiated with 2 MeV electrons have been studied using positron annihilation and deep level transient spectroscopy. Vacancy-type defects are annealed at 500700 °C and 12001400 °C. From the analysis of... (Read more)
- 9. Phys. Rev. B 62, 8016 (2000) , “Isochronal annealing studies of n-type 6H-SiC with positron lifetime spectroscopy”, C. C. Ling, C. D. Beling, S. Fungn-type 6H silicon carbide has been studied using positron lifetime spectroscopy with isochronal annealing temperatures of 400, 650, 900, 1200, and 1400 °C. In the as-grown sample, we have identified the VSi vacancy, the VCVSi divacancy, and probably the VC... (Read more)
- 10. Phys. Rev. B 59, 10603 (1999) , “Defect characterization in electron-irradiated 6H-SiC by positron annihilation”, A. Polity, S. Huth, M. LausmannIsochronal annealing investigations in electron-irradiated 6H-SiC were correlated with temperature-dependent measurements of positron lifetime. It turned out that the positron trapping at temperatures up to 300 K was dominated by the trapping in shallow positron traps. These defects were already... (Read more)
- 11. Appl. Phys. A 67, 209 (1998) , “Silicon vacancies in 3C-SiC observed by positron lifetime and electron spin resonance”, A. Kawasuso, H. Itoh, N. Morishita, M. Yoshikawa, T. Ohshima, I. Nashiyama, S. Okada, H. Okumura, S. YoshidaPositron lifetime and electron spin resonance (ESR) measurements were performed for 1-MeV electronirradiated cubic silicon carbide (3C-SiC). From a comparison of the annealing behaviors of positron lifetime and ESR signal, we identified the annihilation of positrons localized at single-negative silicon vacancies. The positron lifetime at silicon vacancies was first determined experimentally to be 188|±|4 ps. This value agrees well with the theoretical positron lifetime for silicon vacancies [G. Brauer et al. Phys. Rev. B 54, 2512 (1996)]. The trapping coefficient of singlenegative silicon vacancies was also derived. (Read more)
- 12. Phys. Rev. B 51, 1928 (1995) , “Carbon and silicon vacancies in electron-irradiated 6H-SiC”, S. Dannefaer, D. Craigen, D. KerrPositron-lifetime and Doppler-broadening spectroscopies were used to investigate vacancies formed by 2.2- and 10-MeV electrons. Carbon vacancies yield a positron lifetime of 160 ps, only 15 ps longer than the bulk lifetime, and the Doppler-broadening S parameter is very close to that for the bulk.... (Read more)
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