Vibrational structure, spin-orbit splitting, and bond dissociation energyof Cl 2 + ( X ̃ Π g 2 ) studied by zero kinetic energy photoelectron spectroscopyand ion-pair formation imaging method
The isotopomer-resolved vibrational and spin-orbit energy structures of Cl 2 + ( X ̃ Π g 2 ) have been studied by one-photon zero kinetic energy photoelectron spectroscopy. The spin-orbit energy splitting for the ground vibrational state is determined as 717.7 ± 1.5 cm − 1 , which greatly improves o...
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Veröffentlicht in: | The Journal of chemical physics 2007-09, Vol.127 (10), p.104307-104307-8 |
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Zusammenfassung: | The isotopomer-resolved vibrational and spin-orbit energy structures of
Cl
2
+
(
X
̃
Π
g
2
)
have been studied by one-photon zero kinetic energy photoelectron spectroscopy. The spin-orbit energy splitting for the ground vibrational state is determined as
717.7
±
1.5
cm
−
1
, which greatly improves on the accuracy of the previously reported data. This value is found to be in good agreement with the
ab initio
quantum chemical calculation taking account of the inner shell electron correlation. The first adiabatic ionization energy (IE) of
Cl
2
is determined as
92
645.9
±
1.0
cm
−
1
. Using the ion-pair formation imaging method to discriminate signals of
Cl
+
(
D
2
1
)
from those of
Cl
+
(
P
j
3
)
, the threshold for ion-pair
(
E
tipp
)
production,
Cl
+
(
D
2
1
)
+
Cl
−
(
S
0
1
)
←
Cl
2
(
X
Σ
g
+
1
)
, is determined as
107
096
−
2
+
8
cm
−
1
. By using the determined IE and
E
tipp
for
Cl
2
and also the reported IE and electronic affinity for chlorine atom, the bond dissociation energies of
Cl
2
(
X
Σ
g
+
1
)
and
Cl
2
+
(
X
̃
Π
g
2
)
have been determined as
19
990
−
2
+
8
and
31
935.1
−
2
+
8
, respectively. |
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ISSN: | 0021-9606 1089-7690 |
DOI: | 10.1063/1.2772273 |