Deceleration parameter


The deceleration parameter in cosmology is a dimensionless measure of the cosmic acceleration of the expansion of space in a Friedmann–Lemaître–Robertson–Walker universe. It is defined by:
where is the scale factor of the universe and the dots indicate derivatives by proper time. The expansion of the universe is said to be "accelerating" if , and in this case the deceleration parameter will be negative. The minus sign and name "deceleration parameter" are historical; at the time of definition was expected to be negative, so a minus sign was inserted in the definition to make positive in that case. Since the evidence for the accelerating universe in the 1998–2003 era, it is now believed that is positive therefore the present-day value is negative. In general varies with cosmic time, except in a few special cosmological models; the present-day value is denoted.
The Friedmann acceleration equation can be written as
where the sum extends over the different components, matter, radiation and dark energy, is the equivalent mass density of each component, is its pressure, and is the equation of state for each component. The value of is 0 for non-relativistic matter, 1/3 for radiation, and −1 for a cosmological constant; for more general dark energy it may differ from −1, in which case it is denoted or simply
Defining the critical density as
and the density parameters, substituting in the acceleration equation gives
where the density parameters are at the relevant cosmic epoch.
At the present day is negligible, and if this simplifies to
where the density parameters are present-day values; this evaluates to for the parameters estimated
from the Planck spacecraft data..
The time derivative of the Hubble parameter can be written in terms of the deceleration parameter:
Except in the speculative case of phantom energy, all postulated forms of mass-energy yield a deceleration parameter Thus, any non-phantom universe should have a decreasing Hubble parameter, except in the case of the distant future of a Lambda-CDM model, where will tend to −1 from above and the Hubble parameter will asymptote to a constant value of
The above results imply that the universe would be decelerating for any cosmic fluid with equation of state greater than . However observations of distant type Ia supernovae indicate that is negative; the expansion of the universe is accelerating. This is an indication that the gravitational attraction of matter, on the cosmological scale, is more than counteracted by the negative pressure of dark energy, in the form of either quintessence or a positive cosmological constant.
Before the first indications of an accelerating universe, in 1998, it was thought that the universe was dominated by matter with negligible pressure, This implied that the deceleration parameter would be equal to, e.g. for a universe with or for a low-density zero-Lambda model. The experimental effort to discriminate these cases with supernovae actually revealed negative, evidence for cosmic acceleration, which has subsequently grown stronger.