A new experimental method for obtaining real-time in situ infrared reflection-absorption spectra of any reproducibly reversible process has been applied to reveal the time-dependent coverages of adsorbates during the low-temperature oscillatory regime of the NO + CO reaction on Pt{100}. Simultaneous acquisition of real-time mass spectrometry data is used to relate the coverages to the rates of reaction, providing new insight into the mechanisms involved in the oscillation. NO and CO are shown to be present at estimated coverages varying between 0.06 and 0.20 monolayers (ML) for CO and between 0.27 and 0.36 ML for NO at different points in the cycle. The relative phases of these two coverage oscillations differ very significantly. CO is pres...
The NO+CO reaction on Pt{100} has been studied using in-situ vibrational spectroscopy (IRAS) under l...
Various features of NO+CO reaction kinetics on Pt(100) surfaces, including temporal oscillations, ar...
Using different isotopologues of the reactant gases CO and O2, infrared reflection absorption spectr...
A new experimental method for obtaining real-time in situ infrared reflection-absorption spectra of ...
Infrared reflection absorption spectroscopy together with mass spectrometry has been used to investi...
Infrared reflection absorption spectroscopy together with mass spectrometry has been used to investi...
At a partial pressure of 10-7 mbar, the reaction between NO and CO on Pt{100} exhibits oscillatory b...
In order to assess the possibility to follow surface reactions in a quantitative way by vibrational ...
The CO/NO reaction on Platinum supported catalysts exhibits oscillatory behaviour at temperatures be...
We present the first infrared vibrational study of the adsorption of NO on Pt(110) over a wide range...
The CO coverage of a Pt{110} surface in both the high and low reaction rate branches of the bistable...
The reaction of NO and CO on Pt(100) exhibits two branches of steady state production of N2 and CO2 ...
The CO coverage of a Pt{110} surface in both the high and low reaction rate branches of the bistable...
Oscillations and pattern formation driven by a surface reconstruction are studied for the catalytic ...
Coadsorbed NO and CO on a Pt(100) surface react upon heating to form extremely narrow TPR product pe...
The NO+CO reaction on Pt{100} has been studied using in-situ vibrational spectroscopy (IRAS) under l...
Various features of NO+CO reaction kinetics on Pt(100) surfaces, including temporal oscillations, ar...
Using different isotopologues of the reactant gases CO and O2, infrared reflection absorption spectr...
A new experimental method for obtaining real-time in situ infrared reflection-absorption spectra of ...
Infrared reflection absorption spectroscopy together with mass spectrometry has been used to investi...
Infrared reflection absorption spectroscopy together with mass spectrometry has been used to investi...
At a partial pressure of 10-7 mbar, the reaction between NO and CO on Pt{100} exhibits oscillatory b...
In order to assess the possibility to follow surface reactions in a quantitative way by vibrational ...
The CO/NO reaction on Platinum supported catalysts exhibits oscillatory behaviour at temperatures be...
We present the first infrared vibrational study of the adsorption of NO on Pt(110) over a wide range...
The CO coverage of a Pt{110} surface in both the high and low reaction rate branches of the bistable...
The reaction of NO and CO on Pt(100) exhibits two branches of steady state production of N2 and CO2 ...
The CO coverage of a Pt{110} surface in both the high and low reaction rate branches of the bistable...
Oscillations and pattern formation driven by a surface reconstruction are studied for the catalytic ...
Coadsorbed NO and CO on a Pt(100) surface react upon heating to form extremely narrow TPR product pe...
The NO+CO reaction on Pt{100} has been studied using in-situ vibrational spectroscopy (IRAS) under l...
Various features of NO+CO reaction kinetics on Pt(100) surfaces, including temporal oscillations, ar...
Using different isotopologues of the reactant gases CO and O2, infrared reflection absorption spectr...