The Big Bang is often described as an explosion. It was not. There was no point in space where it happened, no surrounding void into which the universe expanded, no moment at which a pre-existing space was suddenly filled with matter. The Big Bang was the beginning of space, time, and energy simultaneously — a hot, dense state from which all subsequent structure emerged.

What we call the Big Bang is better understood as the earliest moment from which our physical theories can make reliable predictions. We have no theory of quantum gravity, so we cannot describe the universe at times earlier than roughly 10⁻⁴³ seconds (the Planck time). But from that moment forward, we have a coherent, observationally tested framework — the standard cosmological model, ΛCDM — that traces the universe from a hot plasma to the galaxies and filaments we observe today.

The evidence for the Big Bang is not a single observation but a convergence from multiple independent lines:

  • Hubble's law — galaxies are receding from us, and more distant ones faster. Running the expansion backward gives a finite age.
  • Big Bang nucleosynthesis — the predicted primordial abundances of hydrogen, helium, deuterium, and lithium match observations precisely.
  • The cosmic microwave background (CMB) — a uniform glow of microwave radiation, at 2.725 K, filling the entire sky.
  • The large-scale structure — the distribution of galaxies on the largest scales matches simulations of structure growing from tiny initial fluctuations in an expanding universe.

The Timeline: From Planck Epoch to Recombination

0 to 10⁻⁴³ seconds — The Planck Epoch

Before 10⁻⁴³ seconds, density and temperature were so extreme that quantum gravitational effects dominated. Our physics breaks down here. The four fundamental forces were likely unified into a single force. We have no predictive theory for this era.

10⁻³⁶ to 10⁻³² seconds — Cosmic Inflation

The universe underwent a period of exponential expansion, doubling in size roughly every 10⁻³⁸ seconds for 60 or more e-folds. By the end of inflation, the universe had expanded by a factor of at least 10²⁶. This inflation explains three otherwise puzzling observations: why the CMB temperature is the same in all directions (the universe was tiny and in thermal contact before inflation); why space appears geometrically flat (inflation stretched away any curvature); and why the large-scale structure looks the way it does (quantum fluctuations during inflation became the seeds of all future structure).

Inflation is not a single model but a class of models, not all equally favoured. The 2014 BICEP2 announcement of gravitational wave imprints in the CMB polarisation — which would have directly probed inflationary energy scales — was later found to be contaminated by galactic dust. The search for primordial gravitational waves in the CMB continues with experiments including BICEP Array, the South Pole Telescope, and future satellite missions.

10⁻¹² seconds — The Electroweak Transition

The electromagnetic and weak nuclear forces, which behave identically at very high energies, separate. The Higgs field gains a non-zero expectation value, giving W and Z bosons their mass. This transition is well understood — the Large Hadron Collider probes these energies directly.

10⁻⁶ seconds — The Quark-Hadron Transition

The temperature drops below roughly 10¹² Kelvin. Free quarks and gluons cool enough to be confined into hadrons: protons and neutrons. The universe is now a hot, dense soup of protons, neutrons, electrons, photons, and neutrinos — a plasma. There is a slight excess of matter over antimatter (about one extra particle per billion particle-antiparticle pairs), which is why there is a matter-dominated universe today. The origin of this baryon asymmetry is not yet fully explained.

"The cosmic microwave background is a photograph of the universe at 380,000 years old — the moment the fog cleared and light was first able to travel freely. Every point of that sky carries information about conditions when the universe was a thousandth of its current size."