6533b832fe1ef96bd129a5a6

RESEARCH PRODUCT

Transition state theory thermal rate constants and RRKM-based branching ratios for the N((2)D) + CH(4) reaction based on multi-state and multi-reference ab initio calculations of interest for the Titan's chemistry.

Yohann ScribanoNatalia Zvereva-loëteNatalia Zvereva-loëteChanda-malis OukBéatrice Bussery-honvault

subject

N(D-2)ThermodynamicsUPPER-ATMOSPHERE010402 general chemistry01 natural sciencesATOMSMOLECULESTransition state theoryMETHANEReaction rate constantAb initio quantum chemistry methodsN(2(2)D)0103 physical sciencesDESCENTPOTENTIAL-ENERGY SURFACES[PHYS.PHYS.PHYS-AO-PH]Physics [physics]/Physics [physics]/Atmospheric and Oceanic Physics [physics.ao-ph]RRKM theorySIZE-EXTENSIVE MODIFICATION010304 chemical physicsElectronic correlationChemistryGeneral ChemistryConfiguration interaction0104 chemical sciencesComputational Mathematics[ PHYS.PHYS.PHYS-AO-PH ] Physics [physics]/Physics [physics]/Atmospheric and Oceanic Physics [physics.ao-ph]Potential energy surfaceAtomic physicsGround state

description

International audience; Multireference single and double configuration interaction (MRCI) calculations including Davidson (+Q) or Pople (+P) corrections have been conducted in this work for the reactants, products, and extrema of the doublet ground state potential energy surface involved in the N(2D) + CH4 reaction. Such highly correlated ab initio calculations are then compared with previous PMP4, CCSD(T), W1, and DFT/B3LYP studies. Large relative differences are observed in particular for the transition state in the entrance channel resolving the disagreement between previous ab initio calculations. We confirm the existence of a small but positive potential barrier (3.86 +/- 0.84 kJ mol-1 (MR-AQCC) and 3.89 kJ mol-1 (MRCI+P)) in the entrance channel of the title reaction. The correlation is seen to change significantly the energetic position of the two minima and five saddle points of this system together with the dissociation channels but not their relative order. The influence of the electronic correlation into the energetic of the system is clearly demonstrated by the thermal rate constant evaluation and it temperature dependance by means of the transition state theory. Indeed, only MRCI values are able to reproduce the experimental rate constant of the title reaction and its behavior with temperature. Similarly, product branching ratios, evaluated by means of unimolecular RRKM theory, confirm the NH production of Umemoto et al., whereas previous works based on less accurate ab initio calculations failed. We confirm the previous findings that the N(2D) + CH4 reaction proceeds via an insertiondissociation mechanism and that the dominant product channels are CH2NH + H and CH3 + NH.

10.1002/jcc.23054https://pubmed.ncbi.nlm.nih.gov/22782670