INCREASING THE TIME STEP IN MOLECULAR-DYNAMICS

被引:17
|
作者
NYBERG, AM
SCHLICK, T
机构
[1] NYU,DEPT CHEM,251 MERCER ST,NEW YORK,NY 10012
[2] NYU,COURANT INST MATH SCI,NEW YORK,NY 10012
[3] ROYAL INST TECHNOL,DEPT THEORET PHYS,S-10044 STOCKHOLM 70,SWEDEN
[4] GOTHENBURG UNIV,DEPT PHYS CHEM,S-41296 GOTHENBURG,SWEDEN
关键词
D O I
10.1016/0009-2614(92)85028-9
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We examine how the two properties of the Langevin/implicit-Euler scheme for molecular dynamics (MD) - stability over large time steps and damping of high-frequency vibrations greater than some cutoff frequency omega(c) - affect the dynamics of a liquid butane model. For time steps DELTAt less-than-or-equal-to 20 fs with a "natural" cutoff omega(c)=k(B)T/HBAR (k(B) and HBAR are Boltzmann's and Planck's constants, T=temperature), the associated kinetic energy is greater than 85% of its value at DELTAt= 1 fs. where the connection to a heat bath is weak and the generated trajectories by our scheme and conventional MD are similar. At larger DELTAt the connection to the heat bath is much stronger, and for DELTAt> 20 fs the intrinsic numerical damping of the scheme sets in. The comparison of bond-length and dihedral-angle distributions at three different time steps reveals a small, broadening trend at larger DELTAt. The differences in a dynamic property, the velocity autocorrelation function, are however much larger. There is a drastic difference for 2 and 20 fs, and for DELTAt> 40 fs most of the motion between time steps is damped and more random. Thus, while the Langevin equation per se gives a Boltzmann distribution, the expected configurational sampling can be obtained as long as the numerical damping does not disturb the balance between the random and damping terms. Consequently, for studying certain dynamic functions time steps in the same range as in conventional MD are needed, but for static properties larger time steps can be used.
引用
收藏
页码:538 / 546
页数:9
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