Exploding stars
In 1998, two teams found distant Type Ia supernovae dimmer than expected. The expansion of space had accelerated while their light was traveling to us.
Field note 01 / Cosmology
“Dark energy” is our name for whatever is driving that acceleration. We can measure its influence across billions of light-years. We still do not know what it is.
Follow the evidence≈68% dark energy
≈27% dark matter
≈5% ordinary matter
It is not a substance we have captured. It is a gap in the model—named for the effect we observe.
What tipped us off
In 1998, two teams found distant Type Ia supernovae dimmer than expected. The expansion of space had accelerated while their light was traveling to us.
The cosmic microwave background records the early universe. Its pattern points to a geometrically flat cosmos with far more energy than matter can supply.
Baryon acoustic oscillations leave a standard scale in the distribution of galaxies. Measuring it at different eras traces how expansion has changed.
Reading the curve
Matter pulls inward and thins as space grows. If dark energy keeps roughly constant density, it eventually dominates—and expansion accelerates.
Leading ideas
Einstein’s cosmological constant treats empty space as having a fixed energy density. It fits observations well—but theory predicts a wildly different value.
“Quintessence” imagines a field whose strength evolves over cosmic time. Detecting change would separate it from a true constant.
General relativity may need revision at the largest scales. In that case, acceleration could be gravity behaving differently—not a new ingredient.
The open case
The equation-of-state parameter w compares dark energy’s pressure with its density. A cosmological constant gives exactly −1.
New galaxy maps, supernova surveys, and gravitational-lensing measurements are narrowing the answer.