Dark energy is one of the most enigmatic and unknown phenomena in the field of cosmology . Although it represents approximately 70% of the energy content of the universe, its exact nature remains a mystery.
In this article, you'll have the opportunity to explore the concept of dark energy in depth, the history of its discovery, the theories that attempt to explain it, and the challenges scientists face in their quest to understand this cosmic enigma. Don't miss this opportunity to learn about Dark Energy: The Mystery of the Expanding Universe.
What is dark energy?
Dark energy is a concept in theoretical physics and cosmology used to describe a form of energy that appears to be present throughout space and is implicated in the accelerated expansion of the universe.
It occupies 70% of cosmic space, and its exact nature is still unknown . We only know that it exists and how it behaves, as demonstrated by cosmological observations from which theoretical models have been formulated to explain how this mysterious form of energy influences cosmic organization. If you want to better understand the composition of the universe, you can read about dark matter.
How does Dark Energy behave in the Universe?

Astronomical observations suggest that it is responsible for accelerating the expansion of the universe for approximately 6,145 billion years by acting as a repulsive gravitational force.
From the framework of the theory of general relativity, formulated by Albert Einstein, dark energy could be considered an additional source of energy and mass that contributes to the curvature of spacetime. In this way, dark energy could be a cosmological constant , a form of vacuum energy that remains constant in time and space.
Other theories, however, propose that dark energy could be associated with dynamic energy fields , such as the quintessence field or the quintessence , which can change over time and have properties similar to those of a fluid.
As we can see, the theoretical models are varied and each of them points to a different approach in an attempt to explain the nature of this strange form of energy and how it behaves in the universe. Later we will delve into the theoretical models that up to now try to explain what dark energy is.
Dark Energy and Dark Matter are not the same

It is important not to confuse dark energy with dark matter, they are two very different concepts from cosmology, and although both make up most of the composition of the universe, they play different roles.
- Dark matter is a form of matter, and therefore, a tangible mass, which as such exerts a strong gravitational influence on the visible matter of the universe. If you're interested in delving deeper into this concept, you can visit our article on .
- Dark energy, on the other hand, is a hypothetical or theorized form of energy. whose existence is a mere inference from the effect it exerts on the accelerated expansion of the universe, resulting in a mysterious force of unknown nature. Dark energy cannot be treated as a conventional form of energy and is therefore a more difficult concept to understand than dark matter.
In conclusion, dark matter is a form of matter, while dark energy is associated with a field that occupies all of space and is more abundant than dark matter.
How has Dark Energy been discovered?
In the next few lines we will take a brief tour of the history of theoretical physics that led to the discovery of dark energy. We start:
Einstein's Cosmological Constant
According to Einstein himself, the cosmological constant "was his biggest mistake." However, science is built by "accumulation of errors" and that allows its progress. Perhaps that "mistake" was an approximation to a deeper knowledge of the universe.
Albert Einstein proposed the cosmological constant to obtain a stable solution in his gravitational field equation, which would point to a universe that is in a steady state.
However, Edwin Hubble's observations proved that the universe is expanding , and it was then that Einstein referred to the cosmological constant as "his biggest blunder." The history of physics was at this point on the cusp of discovering the cause of the universe's expansion: dark energy.
The Acceleration of the Expansion of the Universe
The discovery of distant supernovae by two teams of astronomers in 1998 marked a milestone in the history of cosmology, leading scientists to formulate "the missing piece of the puzzle" that would explain the accelerated expansion of the universe: dark energy was proposed as the cause of this acceleration. If you would like to learn more about how these supernovae occur, please see our article on how a supernova occurs.
Theories and Explanatory Models of Dark Energy

The Cosmological Constant and the Energy of the Vacuum
One of the most accepted theories to explain dark energy is that it is related to the energy of the vacuum of space-time itself.
Einstein's cosmological constant can be interpreted as a manifestation of vacuum energy , which has a repulsive effect on the expansion of the universe. Thus, according to the theory of relativity, dark energy would influence the "fabric of spacetime" that sustains the universe, curving it and causing its expansion.
Quintessence and Scalar Fields
Another theory suggests that dark energy could be a form of "quintessence , " a type of matter whose energy density can vary in time and space.
This quintessence would be related to scalar fields, whose contributions to energy density could change slowly over time.
Cosmological observations show the existence of Dark Energy

Type Ia Supernovae
The first direct evidence for dark energy came from observations of the accelerating rate of the universe's expansion through the study of Type Ia supernovae. These bright, dying stars allowed astronomers to calculate the distances to their host galaxies and determine how fast they were moving away from us.
The Cosmic Background Radiation
Further evidence for the existence of dark energy was obtained through observations of the cosmic microwave background radiation, which is the thermal echo of the Big Bang. Precise measurements of temperature fluctuations in this radiation have allowed scientists to estimate the amount of dark energy in the universe with great accuracy. To understand the Big Bang and its implications, see the article on the Big Bang.
Current Projects for Dark Energy Research

Dark Energy Survey (DES)
The Dark Energy Survey is an astronomical observation project that seeks to gain a better understanding of dark energy by measuring the distribution of galaxies and the expansion of the universe . This project is using the Victor M. Blanco Telescope at the Cerro Tololo Inter-American Observatory in Chile to carry out its observations.
Nancy Grace Roman Space Telescope
The Nancy Grace Roman Space Telescope, scheduled for launch in the next decade, aims to study dark energy and provide a deeper understanding of its nature. This space telescope is designed to make precise measurements of the expansion of the universe over cosmic time.
Some Alternative Explanations of Dark Energy
Modifications to the General Theory of Relativity
One possible explanation for dark energy is that Einstein's general theory of relativity is not applicable at cosmological scales and must be modified. However, so far, no attempt to modify general relativity has been able to eliminate dark energy without violating other observations.
Dark Matter Effects
Another alternative explanation could be that dark energy is a side effect of the interaction of dark matter with gravity and vacuum energy on cosmic timescales. While this idea is interesting, there is still no definitive evidence to support this hypothesis.
The Future of the Universe

An Ever Expanding Universe
If there is one thing we are certain of, it is that the universe is expanding at an increasing rate and it is due to "what" scientists have called dark energy.
The presence of dark energy, therefore, implies that the universe will continue to expand in the future; there seems to be nothing to stop its acceleration. Thus, in the very distant future, almost all galaxies will disappear from our sight, leaving us alone in an increasingly empty and dark universe . Disturbing, to say the least; we don't know if the human species will survive to see it.
A Cold and Dark Fate?
If dark energy continues to dominate the expansion of the universe, it may eventually reach a state called "heat death ," in which all stars will have burned out and there will not be enough energy left to create new cosmic structures. In this scenario, the universe would become increasingly colder and darker.
In conclusion

Dark energy is one of the greatest mysteries of modern cosmology. Its discovery has led scientists to seek new theories and explanations for this enigma.
Although not yet fully understood, the quest for a better understanding of dark energy remains a priority in astronomical research. With projects like the Dark Energy Survey and the Nancy Grace Roman Space Telescope, scientists hope to unravel the mystery of dark energy and ultimately reveal the true nature of the universe we live in.
What did you think? The fate and behavior of the universe is breathtaking, and it's all thanks to Dark Energy : The Mystery of the Universe's Expansion.