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hyperfine interactions (and how to do it in WIEN2k)

Department of Materials Science and Engineering. Stefaan Cottenier. hyperfine interactions (and how to do it in WIEN2k). stefaan.cottenier@ugent.be. http://www.hfinqi.consec.com.au/. Slide by K. Schwarz. nuclear point charges interacting with electron charge distribution.

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hyperfine interactions (and how to do it in WIEN2k)

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  1. Department of MaterialsScienceand Engineering StefaanCottenier hyperfineinteractions(and how to do it in WIEN2k) stefaan.cottenier@ugent.be

  2. http://www.hfinqi.consec.com.au/

  3. Slideby K. Schwarz

  4. nuclear point chargesinteractingwithelectron charge distribution Slideby K. Schwarz

  5. Definition : hyperfineinteraction = all aspects of the nucleus-electroninteractionthat go beyondthe nucleus as anelectric point charge.

  6. electricpointcharge

  7. electricpointcharge • volume • shape

  8. electricpointcharge N • volume • shape • magnetic moment S

  9. How to measurehyperfineinteractions ? • NMR • NQR • Mössbauerspectroscopy • TDPAC • Laser spectroscopy • LTNO • NMR/ON • PAD • …

  10. How to measurehyperfineinteractions ? • NMR • NQR • Mössbauerspectroscopy • TDPAC • Laser spectroscopy • LTNO • NMR/ON • PAD • … • This talk: • Hyperfinephysics • How to calculatewith WIEN2k • NOT : • What are these usefulfor ? (touched in finalslides)

  11. Content • Definitions • magnetic hyperfine interaction • electric quadrupole interaction • isomer shift • summary

  12. S N

  13. S N

  14. S N

  15. S N

  16. S N

  17. S E Energy (units: B) N

  18. S E Energy (units: B) N

  19. S E Energy (units: B) N

  20. S E Energy (units: B) N

  21. S E Energy (units: B) N

  22. E Energy (units: B)

  23. Classical Quantum(=quantization) E m =-1 m =0 Energy (units: B) m =+1 e.g. I =1

  24. Classical Quantum(=quantization) E m =-1 m =0 Energy (units: B) m =+1 e.g. I =1 Hamiltonian :

  25. nuclearproperty electronproperty (vector) (vector) S N interactionenergy(dot product) :

  26. Source of magnetic fields at the nuclear site in an atom/solid Btot = Bdip + Borb + Bfermi+ Blat

  27. Bdip = electron as bar magnet Source of magnetic fields at the nuclear site in an atom/solid Btot = Bdip + Borb + Bfermi+ Blat

  28. Bdip = electron as bar magnet L r I v -e Morb Borb Source of magnetic fields at the nuclear site in an atom/solid Btot = Bdip + Borb + Bfermi+ Blat • Borb = electron as current loop

  29. Bdip = electron as bar magnet L r I v -e Morb Borb 2s 2p Source of magnetic fields at the nuclear site in an atom/solid Btot = Bdip + Borb + Bfermi+ Blat • Borb = electron as current loop • BFermi = electron in nucleus

  30. Bdip = electron as bar magnet L r I v -e Morb Borb 2s 2p Source of magnetic fields at the nuclear site in an atom/solid Btot = Bdip + Borb + Bfermi+ Blat • Borb = electron as current loop • BFermi = electron in nucleus • Blat= neighbours as bar magnets

  31. How to do it in WIEN2k ? • Magnetic hyperfine field • In regular scf file: • :HFFxxx(Fermi contact contribution) • After post-processing with LAPWDM : • orbital hyperfine field (“3 3” in case.indmc) • dipolar hyperfine field (“3 5” in case.indmc) • in case.scfdmup • After post-processing with DIPAN : • lattice contribution • in case.outputdipan more info: UG 7.8 (lapwdm) UG 8.3 (dipan)

  32. Content • Definitions • magnetic hyperfine interaction • electric quadrupole interaction • isomer shift • summary

  33. Forceon a point charge:

  34. Forceon a point charge: • Forceon a general charge:

  35. -Q -Q

  36. -Q -Q

  37. -Q -Q

  38. -Q 2

  39. -Q  (deg) Energy (units e2/40) 2 -Q

  40.  (deg) Energy (units e2/40)

  41.  (deg) m=0 e.g. I = 1 Energy (units e2/40) m=1

  42. nuclearproperty electronproperty (tensor – rank 2 ) (tensor – rank 2 ) interactionenergy(dot product) :

  43. How to do it in WIEN2k ? Electric-field gradient In regular scf file: :EFGxxx :ETAxxx Main directions of the EFG Full analysis printed in case.output2 if EFG keyword in case.in2 is put (UG 7.6) (split into many different contributions) } 5 degrees of freedom • more info: • Blaha, Schwarz, Dederichs, PRB 37 (1988) 2792 • EFG document in wien2k FAQ (Katrin Koch, SC)

  44. Content • Definitions • magnetic hyperfine interaction • electric quadrupole interaction • isomer shift • summary

  45. No no with 

  46. No no with 

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