1 / 22

Crystal structure, electric and magnetic properties in Na x CoO 2

IUMRS-ICAM2003. Crystal structure, electric and magnetic properties in Na x CoO 2. K.Nagasawa and H.Nakatsugawa (d03ga312@ynu.ac.jp) (naka@ynu.ac.jp) Division of Materials Science and Engineering, Graduate School of Engineering,

Télécharger la présentation

Crystal structure, electric and magnetic properties in Na x CoO 2

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. IUMRS-ICAM2003 Crystal structure, electric and magnetic properties in NaxCoO2 K.Nagasawa and H.Nakatsugawa (d03ga312@ynu.ac.jp) (naka@ynu.ac.jp) Division of Materials Science and Engineering, Graduate School of Engineering, Yokohama National University, Japan

  2. INTRODUCTION A layered cobalt oxides NaxCoO2 have been known as a candidate for thermoelectric materials and a large number of studies have been made on the strongly correlated electron system in the CoO2 layers. But Little is known about the relationship between CoO2 layers and Na+ layers with increasing sodium content. From this point of view, we studied crystal structure, electric and magnetic properties in these materials.

  3. EXPERIMENTAL Measurements • X-ray diffraction measurement (Cu Kα) • Synchrotron radiation X-ray diffraction measurement in SPring-8 by JASRI • Magnetic susceptibility measurement using MPMS SQUID magnetometer Analyses • Rietveld analysis by RIETAN-2000 code • Izumi F. and Ikeda T., Mater. Sci. Forum Vol. 321-324 pp. 198-203 (2000). • Maximum entropy method by MEED code • Kumazawa S.et al. , J.Appl.Crystallogr. Vol. 26, pp. 453-457 (1993).

  4. Sample preparation : x=0.73 , 0.75 , 0.77 , 0.79 , 0.81 , 0.83 mixing Na2CO3, Co3O4 calcination Rapid heat-up (RH) technique 880℃ 12h Specimen is directly placed in a furnace pre-heated at 750℃ Instantaneously start chemical reaction Avoiding Na evaporation calcination 880℃ 12h pressing 4MPa T.Motohashi.et.al Appl.phy.lett. Vol. 79, pp. 1480-1482 (2001). sintering 920℃ 12h

  5. RESULTS Powder x-ray diffraction patterns at 300K x=0.75 106 002 112 008 104 006 110 202 108 102 100 004 103 105 101 114 200 107 201 106 x=0.77 002 110 104 006 112 008 202 108 102 100 004 103 105 101 114 200 107 201

  6. 002 x=0.81 106 104 006 102 110 004 103 100 105 112 108 101 008 114 202 200 107 201 x=0.83 106 002 110 104 006 102 004 103 100 112 108 105 101 114 008 202 200 107 201 Deviations in the 008 and 108 peaks with the change of Na content x

  7. Rietveld refinements of XRD measurements at 300K

  8. Synchrotron radiation X-ray powder diffraction 110 x=0.75 T=300K 112 008 106 202 108 114 200 201 107 x=0.75 T=200K 110 106 112 202 114 108 008 200 201 107 x=0.75 T=100K 110 106 112 202 114 108 200 008 107 201

  9. 110 x=0.77 T=300K 112 106 008 202 108 114 200 107 201 110 x=0.77 T=200K 106 112 202 114 108 200 008 107 201 110 x=0.77 T=100K 106 112 202 114 108 200 008 107 201

  10. 106 110 x=0.79 T=300K 112 202 114 108 200 008 107 201 106 110 x=0.79 T=200K 112 202 114 108 200 008 107 201 110 106 x=0.79 T=100K 112 114 202 108 200 008 107 201

  11. x=0.81 T=300K 110 106 112 114 202 108 008 200 107 201 x=0.81 T=200K 110 106 112 114 202 108 200 008 107 201 x=0.81 T=100K 110 106 112 114 202 108 200 008 107 201

  12. 110 x=0.83 T=300K 106 112 202 114 108 200 008 107 201 110 x=0.83 T=200K 106 112 202 114 108 200 008 107 201 x=0.83 T=100K 110 106 112 202 114 108 200 008 107 201 Deviations in the 008 and 108 peaks with the change of temperature

  13. Rietveld refinements of Synchrotron radiation X-ray measurements

  14. Crystal structure of (Space group: P63/mmc) 2b site 2d site Na2 Na1 Co O

  15. 3D-MEM charge density distributions using Synchrotron radiation X-ray diffraction data x=0.75 T=300Kequi-counter surface 1.5 e/Å3 x=0.75 T=300Kequi-counter surface 2.0 e/Å3

  16. x=0.75 T=200Kequi-counter surface 1.5 e/Å3 x=0.75 T=200Kequi-counter surface 2.0 e/Å3

  17. x=0.75 T=100Kequi-counter surface 1.5 e/Å3 x=0.75 T=100Kequi-counter surface 2.0 e/Å3

  18. Co-O hybridization x=0.81 T=300Kequi-counter surface 1.5 e/Å3 x=0.81 T=300Kequi-counter surface 2.0 e/Å3

  19. Co-O hybridization x=0.81 T=200Kequi-counter surface 1.5 e/Å3 x=0.81 T=200Kequi-counter surface 2.0 e/Å3

  20. Co-O hybridization x=0.81 T=100Kequi-counter surface 1.5 e/Å3 x=0.81 T=100Kequi-counter surface 2.0 e/Å3 formation of the Co-O hybridization in the CoO2 layer with increase of Na content x

  21. Magnetic properties Magnetic parameters

  22. SUMMARIES • In the Rietveld refinement, there are good agreement between x=0.75 and x=0.81, except for (008) and (108) peaks. The deviation of the two reflections is very large relative to that of other reflections. • Electron density distribution based on the synchrotron radiation X-ray diffraction data show the direct observation of increase of the Co-O hybridization in the CoO2 layer with increasing the sodium content. Acknowledgments We are grateful to K. Kato and S. Aoyagi for their help in the synchrotron radiation experiments which were performed at the SPring-8 with the approval of the Japan Synchrotron Radiation Research Institute (JASRI) (Proposal No.2003B0055-ND1a-np). This work was supported by CASIO foundation for the promotion of science, Yazaki foundation for the promotion of science and engineering and Yokohama manufacturers association foundation.

More Related