Title :
Ab initio/RRKM study of dissociation mechanism of C6H63+: A view on Coulomb explosion of benzene
Author :
Zyubina, T.S. ; Lin, S.A. ; Bandrauk, A.D. ; Mebel, A.M.
Author_Institution :
Inst. of Molecular Sci., Acad. Sinica, Taipei, Taiwan
Abstract :
Density functional B3LYP/6-31G(d,p) calculations have been performed in order to investigate isomerization and dissociation of benzene trication, which are relevant to the Coulomb explosion mechanism of benzene. The results demonstrate that the benzene-like isomer of C6H63+ can decompose through various pathways leading to distinct fragmentation products. RRKM calculations of rate constants for individual reaction steps assuming that the initial internal energy of the trication is 110 kcal/mol and solving kinetic master equations to obtain relative branching ratios show that H2CCCH2+ + H2CCCH+ are the dominant products (81.5%) followed by C2H3+ + C4H32+ (13.2%) and the other minor products include CH3+ + H2CCCCCH2+ (2.6%), C2H42+ + H2CCCC+ (1.1%), H2CCCH2+ + c-C3H3+ (0.55%), C2H2+ + c-C4H42+ (0.49%), C2H4+ + HCCCCH2+ (0.20%), and CH2+ + H2CCCHCCH2+ (0.14%). The fragments are expected to be produced with high translational energy due to high Coulomb repulsion energy barriers. We consider implications of the C6He63+ potential energy surface and decomposition mechanism to the Coulomb explosion of benzene.
Keywords :
ab initio calculations; density functional theory; dissociation; isomerisation; organic compounds; potential energy surfaces; reaction kinetics theory; reaction rate constants; C6H63+; C6He63+ potential energy surface; Coulomb explosion; Coulomb explosion mechanism; Coulomb repulsion energy barriers; RRKM calculations; RRKM study; ab initio study; benzene; benzene trication; benzene-like isomer; decomposition; density functional B3LYP/6-31G(d,p) calculations; dissociation; dissociation mechanism; fragmentation products; internal energy; isomerization; kinetic master equations; rate constants; translational energy; Chemicals; Energy barrier; Equations; Explosions; Kinetic theory; Physics; Potential energy;
Conference_Titel :
Lasers and Electro-Optics, 2003. CLEO/Pacific Rim 2003. The 5th Pacific Rim Conference on
Print_ISBN :
0-7803-7766-4
DOI :
10.1109/CLEOPR.2003.1277070