Employing numerical and theoretical methods, we investigate the structural
characteristics of random sequential addition (RSA) of congruent spheres in
d-dimensional Euclidean space Rd in the infinite-time or
saturation limit for the first six space dimensions (1≤d≤6).
Specifically, we determine the saturation density, pair correlation function,
cumulative coordination number and the structure factor in each =of these
dimensions. We find that for 2≤d≤6, the saturation density ϕs
scales with dimension as ϕs=c1/2d+c2d/2d, where c1=0.202048 and
c2=0.973872. We also show analytically that the same density scaling
persists in the high-dimensional limit, albeit with different coefficients. A
byproduct of this high-dimensional analysis is a relatively sharp lower bound
on the saturation density for any d given by ϕs≥(d+2)(1−S0)/2d+1, where S0∈[0,1] is the structure factor at k=0
(i.e., infinite-wavelength number variance) in the high-dimensional limit.
Consistent with the recent "decorrelation principle," we find that pair
correlations markedly diminish as the space dimension increases up to six. Our
work has implications for the possible existence of disordered classical ground
states for some continuous potentials in sufficiently high dimensions.Comment: 38 pages, 9 figures, 4 table