Na0'33V2O5 - PowerPoint PPT Presentation

1 / 55
About This Presentation
Title:

Na0'33V2O5

Description:

Na0'33V2O5 – PowerPoint PPT presentation

Number of Views:60
Avg rating:3.0/5.0
Slides: 56
Provided by: peter445
Category:
Tags: 33v2o5 | enne | na0

less

Transcript and Presenter's Notes

Title: Na0'33V2O5


1
HFI-NQI 2007
Muon Spin Relaxation (mSR) Studies of Quantum
Phase Transitions
Yasutomo J. Uemura, Columbia University
MnSi, (Sr,Ca)RuO3 Metallic heli / ferromag ?
Para
HTSC Cuprates Static Stripe ? Superconducting
Frustrated J1/J2 and Kagome Systems Insul. AF
? Spin Gap
Collaborators
T. Goko, I.M. Gat-Malureanu, J. Carlo Columbia
G.M. Luke, McMaster
2
Ch. Pfleiderder, P. Boeni, Munchen TU MnSi
K. Yoshimura, Kyoto U (Sr,Ca)RuO3
S. Uchida, T. Ito, R.J. Birgeneau, G.D. Gu HTSC
H. Kageyama, Kyoto U Cu(Cl,Br)La(Nb,Ta)2O7
J1/J2 system
NSF Inter-American Materials Collaboration (CIAM)
E. Baggio-Saitovitch, CBPF (Rio de Janeiro)
J. Sereni, CAB (Bariloche, Argentina)
Y. Sushko, U. Kentucky
S. Julian, U. Toronto,
3
MnSi
180 Angstrom period
4
itinerant
localized
5
(No Transcript)
6
In both cases,
Heisenberg Slater Stoner Doniach Moriya
7
(No Transcript)
8
1979 PRL
9
mSR in MnSi PRL 1978
HLF 700 G
1/T1 T/(T-Tc) 1/T1T c i.e. T1 (1 Tc/T)
10
Support for the SCR theory of Moriya
mSR covers wide temperature region, complementary
to NMR
11
ZF precession in ordered state frequency
scales with ordered moment
12
T2K
Weak TF 100 G
Precession amplitude represents para- /
non-magnetic volume
T70K
13
Magnetic order only below pC 15 kbar
Non-Fermi-liquid behavior with T1.5 resistivit
y
both p lt pC at T gtTC and p gt pC
Pfleiderer, Julian, Lonzarich PRB 1997
14
Pfleiderer et al., PRB1997 Nature2004
neutron scatt.
Anomalous short-range correlations at p gt p
Transport /suscepti. weakly first order
transition above p12 kbar
15
Drop of intensity below p
S. Brown et al., 29Si NMR in ZF
Suggests heterogeneity above p
Limited by pressure spread expected for
powderized NMR sample No information about spin
dynamics
16
1998 - MuSR in MnSi under applied pressure
---- difficulty in large background from
cell and limited accessible
pressure
2004 Summer and November major progress with T.
Goko MuSR in Transeverse Field of 100
G. Single crystal specimen from
Pfleiderer (TU Munich)
17
Single crystal
WTF 100 G
18
(No Transcript)
19
(No Transcript)
20
TF 100 G
21
(No Transcript)
22
p
pC
(kbar)
23
MuSR in Weak Transverse Field
MnSi
Phase Separation between p and pC
No Static Magnetism above pC 14.6 kbar
24
MuSR in Longitudinal Field 200 G
T1 measurements
Suppression of dinamic critical behavior with
increasing pressure
25
8.3
26
New Information from MuSR
p
pC
  • Finite Static Volume Fraction between 1.2 1.5
    GPa
  • ----- Spontaneous Phase Separation
  • No static component above 1.5 GPa
  • No dynamic critical behavior above p

Also Little temperature dependence of ordered
moment size (ZF-mSR frequency) --- confirming
NMR ---
? First-order QPT
27
(No Transcript)
28
Neutron intensity S2 times Volume fraction
Volume average
Looks like second order
29
Neutron energy resolution 50 m eV
Mn spin fluctuation rate n lt 1011 /s at 16 kbar
30
Mn spin fluctuation rate n at 16 kbar ( pC lt p
) at T 2.5 K
MuSR n gt 1010 /s, if instantaneous
moment size 0.2 mB
Neutron n lt 1011 /s
1010 lt n lt 1011 /s
  • Very slow but definitely dynamic fluctutions of
    the partial order correlations

? In para/non mag state, very slow soft mode
towards competing magnetic state
31
(Sr,Ca)RuO3
Another system which shows crossover from
itinerant ferro to correlated paramagnet
32
(No Transcript)
33
para
ferro
Ca con. x
Kiyama, Yoshimura (Kyoto) JPSJ 1999
34
constant paramagnetic moment peff
decreasing and small ordered moment MS
? typical itinerant weak ferro
35
(No Transcript)
36
(No Transcript)
37
(No Transcript)
38
(No Transcript)
39
17
Nature Physics 3 (January 2007) 29-35.
40
HTSC Cuprates Cu/Zn substitution
TF-MuSR
Heterogeneity Swiss-cheese Zn (a)(b) Stripe
Island (c) Spontaneous (d)
s 1/l2 ns/m
STM
41
ZF
Size 30 40 A
42
HTSC La214
Spontaneous Phase Separation between Static
stripe spin islands (non-superconducting) and Supe
rconducting sea without static magnetism
Island size 30 40 A s.c. coherence length
Similar phase separation also found in Zn-doped
and overdoped HTSC
43
18
44
Swiss Cheese
nn
Phase separation also in overdoped cuprates
paired
unpaired
ns/m
45
BCS
Coexisting paired and unpaired charges in the
overdoped region
46
ns/m
47
Uemura et al. PRL 1991
BE-BCS
TKT
TB3.2 K
48
(No Transcript)
49
(No Transcript)
50
Frustrated Spin Systems -- insulators --
quantum phase transtion between
antiferromagnetic and spin-singlet states
Square-lattice J1/J2 system Kagome lattice
system ---- S ½ Cu2
51
square lattice J1-J2 model
3
collinear
Neel
Spin liquid
no experimental example of spin-liquid state
collinear order
52
(CuCl)LaNb2O7
Kageyama et al., JPSJ2005
(CuCl)LaNb2O7
La
NbO6
CuCl
Temperature(K)
Dc /kB 26.5 K
53
Magnetic Structure of (CuBr)LaNb2O7
collinear (stripe) ordering
Oba et al., JPSJ2006
54
(CuCl)LaNb2O7
55
Zero-Field MuSR
(CuCl)LaNb2O7
Nuclear Dipolar Field
  • No static magnetic order
  • ? Spin Singlet Ground State
  • _at_ 15 mK

56
(No Transcript)
57
(No Transcript)
58
(CuCl)La(Nb,Ta)2O7
(Nb,Ta)O6
(Nb,Ta) solid solution ? No Randomness on the
exchange path
Ta doping suppresses the spin gap and promotes
magnetic order
59
Phase separation sataic mag. vs. para/non mag.
(CuCl)La(Nb1-XTaX)2O7
(Nb,Ta)O6
1.0
Paramagnetic Asymmetry
0.5
0.0
0 5
10 15
20
Temperature (K)
x0.4 TN 5 K
60
High-field magnetization
61
ZF-mSR
62
Dependence of damping on domain radius
63
Temperature dependent volume fraction
Paramagnetic Asymmetry
Temperature (K)
2
64
Island volume fraction depends on Composition
(x) Temperature (T)
Moment size and configuration within an island
independent of T x
Highly disordered spin configuration
65
(No Transcript)
66
P. Mendels et al. PRL 2007
67
(No Transcript)
68
Low Energy mSR
surface
69
Summary
Quantum magnetic phase boundaries
MnSi itinerant electron heli ? para
(Sr,Ca)RuO3 itinerant electron ferro ? para
HTSC static spin/charge stripe ? superconductor
Cu(Cl,Br)La(Nb,Ta)2O7 J1/J2 AF ? spin gap
Spontaneous phase separation
First-order transition both quantum thermal
Generic to all QPT ?
Write a Comment
User Comments (0)
About PowerShow.com