Cb. Wang et al., Interaction of polycrystalline silver with oxygen, water, carbon dioxide, ethylene, and methanol: In situ Raman and catalytic studies, J PHYS CH B, 103(27), 1999, pp. 5645-5656
In situ, Raman spectroscopy was used to study the interaction of polycrysta
lline silver with O-16(2), O-18(2), H2O D2O, CO2, C2H4, and CH3OH at atmosp
heric pressure and temperatures between 25 and 500 degrees C. Raman bands a
t 956 and 800 cm(-1) were observed upon exposure of silver to O-16(2), and
replacement of O-16(2) With O-18(2) shifted these bands to 931 and 778 cm(-
1), respectively. The 956 cm(-1) Raman band was assigned to the stretching
vibration of surface atomic oxygen with a Ag=O double bond, which sits on t
op of a Ag atom. This species is stable up to 250 degrees C and does not ap
pear to interact with water, carbon dioxide, ethylene, or methanol. The 800
cm(-1) Raman band was assigned to the stretching vibration of surface atom
ic oxygen with bridging Ag-O-Ag bends, which sits on the interstices of thr
ee Ag atoms. This oxygen species is desorbed above 300 degrees C and intera
cts with water, ethylene, and methanol. Upon exposure of preoxidized silver
to H2O and D2O, a new major Raman band at 866 cm(-1) was observed, which w
as also assigned to surface atomic oxygen species, but not surface OH becau
se of the absence of a H/D isotopic effect. The selective oxidation of ethy
lene and methanol was determined to occur primarily on the surface atomic A
g-O-Ag oxygen species corresponding to the 800 cm(-1) Raman band.