Reaction dynamics with the multi-layer multi-configurational time-dependent Hartree approach: H + CH4 -> H-2 + CH3 rate constants for different potentials

Welsch R, Manthe U (2012)
The Journal Of Chemical Physics 137(24): 244106.

Zeitschriftenaufsatz | Veröffentlicht | Englisch
 
Download
Es wurden keine Dateien hochgeladen. Nur Publikationsnachweis!
Abstract / Bemerkung
The multi-layer extension of the multi-configurational time-dependent Hartree (MCTDH) approach is applied to the investigation of elementary bimolecular chemical reactions. Cumulative reaction probabilities and thermal rate constants of the H + CH4 -> H-2 + CH3 reaction are calculated using flux correlation functions and the quantum transition state concept. Different coordinate systems and potential energy surfaces (PESs) are studied. The convergence properties of different layerings are investigated and the efficiency of multi-layer MCTDH approach is compared to the standard MCTDH approach. It is found that the multi-layer approach can decrease the numerical effort by more than an order of magnitude. The increased efficiency resulting from the multi-layer MCTDH approach is crucial for quantum dynamical calculations on recent global H + CH4 -> H-2 + CH3 PESs, e. g., the ZBB3-PES [Z. Xie, J. M. Bowman, and X. Zhang, J. Chem. Phys. 125, 133120 (2006)] based on permutational invariant polynomials, which are numerically more demanding than earlier PESs. The results indicate that an accurate description of all transition state frequencies is important to obtain accurate thermal rate constants. (C) 2012 American Institute of Physics. [http://dx.doi.org/10.1063/1.4772585]
Erscheinungsjahr
2012
Zeitschriftentitel
The Journal Of Chemical Physics
Band
137
Ausgabe
24
Art.-Nr.
244106
ISSN
0021-9606
Page URI
https://pub.uni-bielefeld.de/record/2553291

Zitieren

Welsch R, Manthe U. Reaction dynamics with the multi-layer multi-configurational time-dependent Hartree approach: H + CH4 -> H-2 + CH3 rate constants for different potentials. The Journal Of Chemical Physics. 2012;137(24): 244106.
Welsch, R., & Manthe, U. (2012). Reaction dynamics with the multi-layer multi-configurational time-dependent Hartree approach: H + CH4 -> H-2 + CH3 rate constants for different potentials. The Journal Of Chemical Physics, 137(24), 244106. doi:10.1063/1.4772585
Welsch, Ralph, and Manthe, Uwe. 2012. “Reaction dynamics with the multi-layer multi-configurational time-dependent Hartree approach: H + CH4 -> H-2 + CH3 rate constants for different potentials”. The Journal Of Chemical Physics 137 (24): 244106.
Welsch, R., and Manthe, U. (2012). Reaction dynamics with the multi-layer multi-configurational time-dependent Hartree approach: H + CH4 -> H-2 + CH3 rate constants for different potentials. The Journal Of Chemical Physics 137:244106.
Welsch, R., & Manthe, U., 2012. Reaction dynamics with the multi-layer multi-configurational time-dependent Hartree approach: H + CH4 -> H-2 + CH3 rate constants for different potentials. The Journal Of Chemical Physics, 137(24): 244106.
R. Welsch and U. Manthe, “Reaction dynamics with the multi-layer multi-configurational time-dependent Hartree approach: H + CH4 -> H-2 + CH3 rate constants for different potentials”, The Journal Of Chemical Physics, vol. 137, 2012, : 244106.
Welsch, R., Manthe, U.: Reaction dynamics with the multi-layer multi-configurational time-dependent Hartree approach: H + CH4 -> H-2 + CH3 rate constants for different potentials. The Journal Of Chemical Physics. 137, : 244106 (2012).
Welsch, Ralph, and Manthe, Uwe. “Reaction dynamics with the multi-layer multi-configurational time-dependent Hartree approach: H + CH4 -> H-2 + CH3 rate constants for different potentials”. The Journal Of Chemical Physics 137.24 (2012): 244106.

29 Zitationen in Europe PMC

Daten bereitgestellt von Europe PubMed Central.

On regularizing the MCTDH equations of motion.
Meyer HD, Wang H., J Chem Phys 148(12), 2018
PMID: 29604814
On regularizing the ML-MCTDH equations of motion.
Wang H, Meyer HD., J Chem Phys 149(4), 2018
PMID: 30068178
Natural reaction channels in H + CHD3 → H2 + CD3.
Ellerbrock R, Mantheuwe U., Faraday Discuss 212(0), 2018
PMID: 30226505
Ab initio instanton rate theory made efficient using Gaussian process regression.
Laude G, Calderini D, Tew DP, Richardson JO., Faraday Discuss 212(0), 2018
PMID: 30230495
Accuracy of the centrifugal sudden approximation in the H + CHD₃ → H₂ + CD₃ reaction.
Zhang Z, Chen J, Liu S, Zhang DH., J Chem Phys 140(22), 2014
PMID: 24929385

109 References

Daten bereitgestellt von Europe PubMed Central.

State-specific correlation of coincident product pairs in the F + CD4 reaction.
Lin JJ, Zhou J, Shiu W, Liu K., Science 300(5621), 2003
PMID: 12738861
Reactive resonance in a polyatomic reaction.
Shiu W, Lin JJ, Liu K., Phys. Rev. Lett. 92(10), 2004
PMID: 15089205

AUTHOR UNKNOWN, 0
Mode- and bond-selective reaction of Cl(2P3/2) with CH3D: C-H stretch overtone excitation near 6000 cm(-1).
Holiday RJ, Kwon CH, Annesley CJ, Fleming Crim F., J Chem Phys 125(13), 2006
PMID: 17029427
Do vibrational excitations of CHD3 preferentially promote reactivity toward the chlorine atom?
Yan S, Wu YT, Zhang B, Yue XF, Liu K., Science 316(5832), 2007
PMID: 17588925
Tracking the energy flow along the reaction path.
Yan S, Wu YT, Liu K., Proc. Natl. Acad. Sci. U.S.A. 105(35), 2008
PMID: 18664573

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0
A transition state wave packet study of the H+CH4 reaction.
Zhang L, Lu Y, Lee SY, Zhang DH., J Chem Phys 127(23), 2007
PMID: 18154388

AUTHOR UNKNOWN, 0
First-principles theory for the H + CH4 --> H2 + CH3 reaction.
Wu T, Werner HJ, Manthe U., Science 306(5705), 2004
PMID: 15618512
H + CD4 abstraction reaction dynamics: product energy partitioning.
Hu W, Lendvay G, Troya D, Schatz GC, Camden JP, Bechtel HA, Brown DJ, Martin MR, Zare RN., J Phys Chem A 110(9), 2006
PMID: 16509623
An ab initio potential surface describing abstraction and exchange for H+CH4.
Zhang X, Braams BJ, Bowman JM., J Chem Phys 124(2), 2006
PMID: 16422563
Accurate quantum calculations of the reaction rates for H/D+CH4.
van Harrevelt R, Nyman G, Manthe U., J Chem Phys 126(8), 2007
PMID: 17343444
Thermochemistry and accurate quantum reaction rate calculations for H2/HD/D2 + CH3.
Nyman G, van Harrevelt R, Manthe U., J Phys Chem A 111(41), 2007
PMID: 17547382
Comparison of quantum dynamics and quantum transition state theory estimates of the H + CH4 reaction rate.
Andersson S, Nyman G, Arnaldsson A, Manthe U, Jonsson H., J Phys Chem A 113(16), 2009
PMID: 19275158
Ab initio potential energy surface and quantum dynamics for the H + CH4 → H2 + CH3 reaction.
Zhou Y, Fu B, Wang C, Collins MA, Zhang DH., J Chem Phys 134(6), 2011
PMID: 21322696
Depression of reactivity by the collision energy in the single barrier H + CD4 -> HD + CD3 reaction.
Zhang W, Zhou Y, Wu G, Lu Y, Pan H, Fu B, Shuai Q, Liu L, Liu S, Zhang L, Jiang B, Dai D, Lee SY, Xie Z, Xie Z, Braams BJ, Bowman JM, Collins MA, Zhang DH, Yang X., Proc. Natl. Acad. Sci. U.S.A. 107(29), 2010
PMID: 20615988

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0

AUTHOR UNKNOWN, 0
State-to-state reaction probabilities within the quantum transition state framework.
Welsch R, Huarte-Larranaga F, Manthe U., J Chem Phys 136(6), 2012
PMID: 22360179

AUTHOR UNKNOWN, 0
Export

Markieren/ Markierung löschen
Markierte Publikationen

Open Data PUB

Web of Science

Dieser Datensatz im Web of Science®
Quellen

PMID: 23277927
PubMed | Europe PMC

Suchen in

Google Scholar