Electronic quenching of OH A (2)Σ(+) by Kr was investigated through experimental studies of the collision cross sections and the OH X (2)Π product state distribution. The quenching cross sections decrease with increasing rotational excitation in the excited OH A (2)Σ(+) electronic state. The OH X (2)Π products of quenching exhibit a significant degree of rotational excitation but minimal vibrational excitation. Complementary theoretical studies of the OH (A (2)Σ(+), X (2)Π) + Kr potential energy surfaces (PESs), nonadiabatic coupling, and quasiclassical trajectory calculations were carried out to elucidate the quenching dynamics. Accurate PESs for the two lowest diabatic states of A' symmetry were computed along with the angularly dependent...
Several intermolecular vibrational levels of the excited electronic state of OH-Ar correlating with ...
Nonadiabatic quantum scattering calculations have been carried out for the reactive and nonreactive ...
The depolarization of the rotational angular momentum of electronically excited OH(2Sigma;) radicals...
We present a new trajectory surface hopping study of the rotational energy transfer and collisional ...
Zeeman quantum beat spectroscopy has been used to determine the thermal (300 K) rate constants for e...
We report a combined experimental and theoretical investigation of the nonreactive quenching channel...
New multi-reference, global ab initio potential energy surfaces (PESs) are reported for the interact...
15 pags., 9 figs., 4 tabs.We present the dynamics of the electronic quenching OH(A2Σ+) + Kr(1S) → OH...
A pump–probe laser-induced fluorescence technique has been used to examine the nascent OH X <sup>2</...
The seams of conical intersection exist between the ground (12A) and the first-excited (22A) electro...
Collisional quenching of electronically excited OH A2Σ+ radicals by molecular hydrogen introduces no...
The nascent OH X 2Π product state distribution arising from collisional quenching of electronically ...
We present the dynamics of the electronic quenching OH(A2S+) + Kr(1S)-OH(X2P) + Kr(1S), withOH(A2S+)...
Hydroxyl (OH) radicals are important in atmospheric and combustion environments where they are often...
A newly computed potential energy surface, which describes the forces at play between the OH−(X1Σ+) ...
Several intermolecular vibrational levels of the excited electronic state of OH-Ar correlating with ...
Nonadiabatic quantum scattering calculations have been carried out for the reactive and nonreactive ...
The depolarization of the rotational angular momentum of electronically excited OH(2Sigma;) radicals...
We present a new trajectory surface hopping study of the rotational energy transfer and collisional ...
Zeeman quantum beat spectroscopy has been used to determine the thermal (300 K) rate constants for e...
We report a combined experimental and theoretical investigation of the nonreactive quenching channel...
New multi-reference, global ab initio potential energy surfaces (PESs) are reported for the interact...
15 pags., 9 figs., 4 tabs.We present the dynamics of the electronic quenching OH(A2Σ+) + Kr(1S) → OH...
A pump–probe laser-induced fluorescence technique has been used to examine the nascent OH X <sup>2</...
The seams of conical intersection exist between the ground (12A) and the first-excited (22A) electro...
Collisional quenching of electronically excited OH A2Σ+ radicals by molecular hydrogen introduces no...
The nascent OH X 2Π product state distribution arising from collisional quenching of electronically ...
We present the dynamics of the electronic quenching OH(A2S+) + Kr(1S)-OH(X2P) + Kr(1S), withOH(A2S+)...
Hydroxyl (OH) radicals are important in atmospheric and combustion environments where they are often...
A newly computed potential energy surface, which describes the forces at play between the OH−(X1Σ+) ...
Several intermolecular vibrational levels of the excited electronic state of OH-Ar correlating with ...
Nonadiabatic quantum scattering calculations have been carried out for the reactive and nonreactive ...
The depolarization of the rotational angular momentum of electronically excited OH(2Sigma;) radicals...