OriginsExplainer
What Happened in the First Second After the Big Bang?
From the first atomic nuclei back to a possible burst of inflation, here is what scientists have tested about the first second, and where knowledge runs out.
THE QUESTION LIBRARY ORIGINS
Scientists have measured the hot early universe in detail, but whether time itself had a first moment is still an open question.

THE SHORT ANSWER
Nobody knows yet. About 13.8 billion years ago the universe was extremely hot and dense, and it has been expanding and cooling ever since; that part is well measured. But Einstein’s theory of gravity breaks down at the very start, so it cannot tell us whether time began there. Some ideas give time a true first moment. Others say the Big Bang was a bounce, or a new chapter of something older. No test has settled it.
WHERE THE EVIDENCE STANDS
WHAT WE DON’T KNOW YET
Nobody knows whether time had a first moment, or whether our hot beginning grew out of something older. Finding out will probably take a tested theory that joins gravity with quantum physics, and no such theory is finished yet.
WHAT WOULD CHANGE THIS ANSWER
A clear signal from before the hot Big Bang would change this answer, especially a pattern in gravitational waves (ripples in space and time) or ancient light that one model predicted in advance and the others did not. A tested theory of quantum gravity that says what happens at “time zero” would change it too.
Nobody knows yet. That is the honest answer, and it is more interesting than it sounds.
Scientists know a great deal about what came after the start. About 13.8 billion years ago, the universe was extremely hot and packed tight. Since then it has been expanding and cooling. A faint glow left over from that early time still fills the whole sky, and ESA’s Planck spacecraft has mapped it in fine detail. That part of the story is Established.
The trouble comes when you try to rewind to the very first instant. Einstein’s theory of gravity, called general relativity, works beautifully for planets, stars and galaxies. Run its equations backward, though, and they reach a point where density and temperature climb to infinity. Physicists usually read that as a sign that the theory has run out of road. It is not a clear picture of a first moment. To go further, we need a theory that joins gravity with quantum physics, the rules of the very small. Several candidates exist, but none is finished or confirmed.
People ask this question in three ways. Did time begin at the Big Bang? What was there before it? Was the Big Bang an explosion somewhere in space? The last one has a clearer answer: no. It was not a blast at one spot in an empty room. It happened everywhere at once, as space itself began to stretch.
For the first two questions, serious ideas compete. In some, time truly starts. In others, our universe bounced back from an earlier shrinking phase, or is one chapter in a long cycle. Each idea points to different clues we could look for, and none has been confirmed.
If you have lain awake wondering about this, you are in old company. More than 1,500 years ago, the Christian thinker Augustine of Hippo argued that there was no “then” before time began. Modern physics is still working on its own answer.
Distant galaxies are moving apart as the space between them stretches, so the universe was hotter and denser in the past. The whole sky also glows faintly with microwaves. This cosmic microwave background is leftover light from about 380,000 years after the Big Bang, when the universe cooled enough for atoms to form, according to NASA. In its first few minutes, the hot universe also made the lightest elements, and the predicted amounts agree well with what astronomers measure, says the Particle Data Group’s review, though lithium remains a puzzle.
In 2013, ESA released Planck’s map of the microwave glow, then the most detailed ever made; the data imply an age of 13.82 billion years, ESA reported. The hot, dense early universe about 13.8 billion years ago is Established.
Earlier than that, the evidence thins out. Many cosmologists think a burst of extremely fast expansion, called inflation, happened in a tiny fraction of the first second. But NASA says that scientists aren’t sure what came before inflation or what powered it. Inflation is supported, but still debated.
No. The word “bang” suggests a bomb going off in an empty room, with matter flying out from a center. A NASA astrophysicist explained instead that the Big Bang “occurred everywhere all at once,” with no location anyone could point to. It was the start of an expansion that is still going on (NASA, Ask an Astrophysicist).
An analogy helps. Picture raisin bread rising in an oven. Every raisin moves away from every other, and none is the center. Galaxies are the raisins; the dough is space. Where it breaks: a loaf has a crust and sits in an oven. The universe has nothing like the crust, and no known outside room to expand into. The same NASA page adds that if a larger space did hold our universe, we might never be able to measure it.
In the 1960s, physicists proved the singularity theorems. Using general relativity, they show that the universe has a finite past in a broad range of models, as the Stanford Encyclopedia of Philosophy explains. In the standard models, trace matter backward and you reach an edge the equations cannot cross: the singularity, where density becomes infinite.
So did time begin there? Not necessarily. The theorems say little about what that edge is like, and general relativity leaves out quantum effects, which should matter most in that tiny, dense state. Any account of what came “before” needs a deeper theory. Even within Einstein’s theory, the entry notes, the standard models have no first moment, because the idea of time itself breaks down as you approach the start. An analogy: the numbers bigger than zero have a lower limit, but no smallest member. It describes the math, not what really happened.
Inflation does not escape the problem. In 2003, Arvind Borde, Alan Guth and Alexander Vilenkin showed that a universe that has been inflating, or just expanding fast enough, cannot extend forever into the past, so inflation needs other physics at its boundary (Physical Review Letters). That does not prove time began. It moves the question one step back.
In a 1996 lecture, Stephen Hawking argued that if nothing before the Big Bang could ever affect what we observe, we might as well say time began there. That is a choice of description, not proof that nothing came before. And even if time did begin, a question remains: why did it begin in this particular state? The Stanford Encyclopedia lists the early universe’s smoothness and flatness as puzzles that any theory of the start must explain.
The first four ideas come from professional physicists. None is confirmed.
In 1983, James Hartle and Stephen Hawking proposed the “no-boundary” idea (Physical Review D). In Hawking’s plain description, the universe begins at a point like the North Pole: an ordinary point, not a singularity. A common summary: asking what came before is like asking what lies north of the North Pole. Hawking called it a hypothesis to be tested. In 2017, one team argued that the math does not deliver the smooth beginning the idea needs (Feldbrugge, Lehners and Turok); Hartle and colleagues replied that a properly defined version does (Diaz Dorronsoro and others). In 2018 the first team answered that the fix still fails (Physical Review D).
Loop quantum gravity is one attempt to join gravity with quantum physics. Applied to simplified model universes, it replaces the Big Bang with a “big bounce”: an earlier universe shrinks to a tiny but finite size, then expands again (Ashtekar, Pawlowski and Singh, 2006). If so, time did not begin at the Big Bang, but these are simplified models of an unfinished theory.
In 2001, four physicists proposed that the hot Big Bang began when a brane, a membrane-like world in a higher-dimensional space, collided with another surface (the “ekpyrotic” model). Paul Steinhardt and Neil Turok then built a cyclic model of endless eras, each beginning with a bang and ending in a crunch (Science, 2002). Roger Penrose has proposed a different cycle, in which each era grows out of the one before. In 2010, he and a colleague reported rings in the microwave sky as traces of an earlier era, but independent teams found that ordinary random patterns in the glow produce the same rings (Moss, Scott and Zibin). That claim is Not supported.
Some versions of inflation never fully stop, so our universe’s “start” would be a branch point off a larger multiverse. The Stanford Encyclopedia entry’s authors warn that if everything happens somewhere, any observation fits, which makes the idea hard to test.
Ricardo Maldonado, author of GOD PLAYS DICE, proposes an idea called HD-Blast, short for higher-dimensional blast. In Chapter 2 of the book he pictures our universe as the surface of a pond whose depth the fish cannot see. Something violent happens down in that depth, and the fish feel only a wave racing across their world. In his proposal, our hot beginning is that wave, set off by a brief blast in a larger, higher-dimensional space. The analogy breaks down fast: a real pond sits inside space and time, while this idea is about where they came from. It is an unconfirmed Author’s hypothesis. The book says any such model must still produce the expanding universe we see, nearly the same everywhere and in every direction. It names a possible test in the faint hum of gravitational waves, ripples in space and time, that pulsar-timing arrays search for, using spinning dead stars as clocks. Details are in the author’s public Zenodo record, which is not peer review.
Augustine of Hippo, who lived from 354 to 430, wrote in his Confessions that God made time along with the world, so asking what God did before creation misses the point: “there was no then when time was not.” He also refused to mock people who ask such deep questions, saying he would rather admit he did not know (Confessions, Book XI).
In 1931 the Belgian physicist Georges Lemaître, a Catholic priest, argued in Nature that quantum theory suggested a beginning of the world very different from nature today. He did not use his science to argue for his faith. When a 1951 speech by Pope Pius XII seemed to suggest that science proves creation, Lemaître raised his concerns with Vatican officials, and the Pope’s 1952 speech to the International Astronomical Union avoided that claim, a University of Navarra history reports.
Here is common ground. On physics alone, a first moment would not show what, if anything, caused it, and a bounce would not rule out a deeper cause. The Stanford Encyclopedia notes that physical theories of the origin push the question of why the universe exists back a step rather than answering it. That part is Beyond science. And everyone can share the measured facts: the universe was hot and dense about 13.8 billion years ago, and nobody yet knows what, if anything, came before.
Optional detail for the curious. The singularity theorems are about paths through spacetime called geodesics, the routes that freely falling objects follow. Under stated assumptions, the theorems show that some of these paths cannot be extended forever into the past; they reach an edge after a finite length. Two assumptions matter most. There must be enough matter and energy that, traced backward, the light rays reaching us from the past start to converge again (physicists say our past light cone “refocuses”), and the Stanford Encyclopedia notes that the energy in the cosmic microwave background alone is enough. The matter must also obey an “energy condition” that makes gravity pull things together. Quantum fields can break that condition, which is one reason bounce models are possible.
The 2003 Borde–Guth–Vilenkin result needs no energy condition. It sets a limit on how much a universe can have expanded along any path traced into its past, so a universe that is inflating, or expanding fast enough, has an incomplete past. Its conclusion is narrow: inflation alone cannot describe the whole past, and other physics is needed at the boundary.
Hartle and Hawking’s proposal uses “imaginary time,” a mathematical tool in which time behaves like another direction in space. In that setting, Hawking described space and imaginary time together as finite but without any boundary, like the surface of the Earth.
THREE THINGS TO REMEMBER
WORDS WORTH KNOWING
KEEP ASKING
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