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Transcript PPT - Weizmann Institute of Science
Heavy Atom Quantum
Diffraction by Scattering from
Surfaces
Eli Pollak
Chemical Physics Department
Weizmann Institute of Science
Coworkers:
Dr. Jeremy M. Moix
Grants:
Israel Science Foundation
Weizmann-UK Joint Research
Program
http://www.ams.org/featurecolumn/archive/rainbows.html
Bill Casselman
University of British Columbia, Vancouver, Canada
cass at math.ubc.ca
qf
b
4r
n·sin(qr)= sin(qi)=b/R=x,
R
n=4/3
qf(x) = 4qr-2qi = 4sin-1(x/n)-2sin-1(x)
dqf/dx=0 => x=√(20/27), qf=42o
The rainbow angular distribution:
1
x
P (q ) = dx q 4 sin 1 2 sin 1 x )
2 1
n
1
Water: n=4/3
Perspex: n=3/2
Rainbow scattering from a hard wall
h(x)
p/2fqi
f
f=tan-1[h’(x)]~-h’(x)
qf (x)=qi+2f~qi2h’(x)
qi
p/2f
qf
p/2fqi
x
l
d 2 h( x )
The rainbow angles are found when
= 0 they arise from
dx 2
the deflection points of the corrugation function.
The angular distribution for scattering from a hard wall
l
1
p q ) = dx q q i 2h' ( x ) )
l0
2px
If the corrugation is sinusoidal: h ( x ) = h sin
l
then the angular distribution is readily seen to be:
1
4ph
1
2px
p (q ) = dx q q i
cos
=
2
l0
l
l
4ph
2
)
q
q
i
l
l
l=30 mm
h=0.42 mm
qR=qi±10o
Experimental observations
I. In plane scattering of Ar atoms on a LiF(001) surface:
Note:
At 100 meV the de Broglie wavelength
of Ar is 0.25 a.u.. The lattice length is
~ 8 a.u.. It is then not surprising
that the measured distribution is classical.
II. In plane scattering of Ar and Kr on a Ag(100) surface
Ar
Kr
III. In plane scattering of Ar on a 2H-W(100) surface
At 100 meV the de Broglie wavelength is 0.25 a.u.. Why then does one see
diffraction at Ei=27 meV? (The lattice length is ~ 10 a.u..)
Beam energy uncertainty of 1/30 implies a parallel coherence wavelength
of ~7.5 a.u., enough to see the diffraction peak.
Krypton mass - ~84, at 35 meV, dBwl~0.3 a.u..
Beam energy uncertainty of 1/35 implies
a parallel coherence wavelength of ~10 a.u.,
enough to see the diffraction peak.
Heavy molecule interference experiments:
Two slit diffraction experiment Waves at the two slits must be coherent
Fullerene speed of 100 m/s → 5.6 pico m de Broglie wavelength
Collimating the beam with 7 mm slits separated by 1 m implies that
transverse speed is less than 1.4·10-3 m/sec → ~400 nm de Broglie
wavelength or an angular width of ~8 10-4 degrees.
Note the r2 dependent loss of signal due
to the long path between the collimating
slits.
High energy grazing collisions
Diffraction of Fast Atomic Projectiles during Grazing Scattering from a
LiF(001) Surface PRL 98, 016103 (2007)
A. Schueller, S. Wethekam, and H. Winter*
Institut fuer Physik, Humboldt Universita¨t zu Berlin, Brook-Taylor-Strasse 6, D-12489 BerlinAdlershof, Germany
Light atoms and molecules with energies from 300 eV to 25 keV are scattered under a
grazing angle of incidence from a LiF(001) surface…. Experimental results for scattering of
H, D, 3He, and 4He atoms as well as H2 and D2 molecules can be unequivocally referred to
atom diffraction with de Broglie wavelengths as low as about 0.001 A°
Analysis: At 10 keV the de Broglie wavelength of 4He is 0.0027 a.u.
a 1o grazing angle implies p┴~p║/60 so a perpendicular wavelength of 0.16 a.u..
The angular resolution is ~0.01o so that the coherence wavelength is ~16 a.u.,
enough to observe diffraction.
Theory – A typical diffraction pattern
A square surface
A hexagonal surface
At low energy quantum mechanics prevails
Consider again the Ar-LiF scattering experiment:
Classical and quantum scattering on frozen (model) surface.
Ar energy of 705 meV → 5.5 pm
de Broglie wavelength while LiF
lattice length =400 pm.
The angular width of the beam is
2 degrees so the perpendicular
coherence wavelength is ~ 180 pm.
Classical Wigner
Exact quantum
Reducing the uncertainty in the transverse momentum so that the angular width
of the incident beam is 0.2o leads to the quantum mechanical diffraction pattern:
The typical lattice length is 1 nm, a factor of 100 smaller than the size
of the grating used in the two slit experiment, implying a reduction of the
collimation length by 102 and thus a gain of 104 in the signal to noise ratio.
The final momentum distribution with an angular incident width of 0.2o
Decoherence via increase of surface temperature
Phonons modeled as single oscillator coupled to the vertical motion
Preliminary experimental results – scattering of Ar on Ru(0001)
M. Minniti and D. Farias, Madrid.
Energy – 64 meV,
de Broglie wavelength – 18 pm.
Lattice length – 300 pm
Coherence length – 180 pm (2 mm aperture)
400 pm (.75 mm aperture)
720 pm (0.4 mm aperture)
Summary:
• Quantum diffraction of heavy atoms is observable in surface
scattering at low temperatures.
• Collimation of the incident beam leads to partial diffraction
patterns.
• At sufficiently low surface temperature, surface phonons do
not wipe out the coherence
• Decoherence may be studied quantitatively by varying the
surface temperature
Future directions
• Use better theory (MCTDH) to include a realistic
representation for the continuum of phonon modes.
• Study diffraction of molecular systems – do internal
modes destroy the quantum diffraction through
energy exchange?
• Can heavy atom diffraction be used to study surface
interactions – phonons or electronic?
• Is it possible to use the quantum coherence to
manipulate energy transfer with the surface?
• Can one conehrently control reactive processes on the
surface?
Energy loss rainbows
J. Moix, E. Pollak and S. Miret-Artès, Phys. Rev. Lett. 104, 116103 (2010).
From the perturbation theory we found the Gaussian energy transfer kernel
and the energy distribution of the scattered particle:
Consider then the energy loss as a function of impact parameter for Ar-LiF scattering:
Joint energy and angular distribution for a 15O angle of
incidence, 3eV incidence energy and surface temperature T=30K.
Have they been seen experimentally?
Rotational Rainbows
C2=0.01, C1=0
J
= 0 = 1,
I
2 2 E Z
=
M
2
For simplicity consider a diatomic molecule with angular momentum parallel
to the surface. Let qi denote the initial angle of the diatomic axis relative to
the vertical to the surface:
q
For a smooth surface, the interaction potential will be a function
of the angle q. The final angular momentum will then depend on
the initial rotational angle.
Perturbation theory
The Hamiltonian:
2
p
p p
1 2
'
V1 Z , q q ' , '))
H=
V Z ) pq ' 2
2m A m B )
2I
sin q ')
2
X
2
Z
The unperturbed motion:
pq ' = 0,
p ' = J 0 ,
q '=
p
2
1st order perturbation theory:
,
' t ) = ' t 0 )
J0
t t 0 )
I
pq ' = pq ' V1 ) J 02pq ' J 0 )
p ' = p ' V1 )
Energy conservation:
)
PZ 0PZ
1
2
2
=
2 J 0p ' V1 ) p ' V1 ) pq ' V1 ) = E rot
m A m B ) 2 I
The angular distribution:
tan i =
PX 0
,
PZ 0
tan f
sin 2 i ) Erot
4
EZ
PX 0 PZ
1
PZ 0 PZ 0
When the molecule is not too slowly rotating one readily finds:
P ) =
1
p r2 sin 4 q J ) 2
→ The rotational rainbows cause maxima in the angular distribution!
Examples:
V Z ) = V0 e 2Z 2e Z
)
→ Morse potential
3
Z
V1 Z , q ) = V0 2C1e 1 cosq )) C 2 e 2Z sin 2 q )
2
(C1=0 for a homonuclear diatomic)