In quantum field theory, the vacuum state refers to the lowest energy state in a system. Particles are excitations above this state and carry energy, hence the term “vacuum” to refer to the state with no particles.
Nothing requires this state to be unique. There may be many different field configurations that are local energy minima, and hence stable against small perturbations. A local minimum that does not globally minimize energy is called a false vacuum. While locally it looks like a stable vacuum, it is unstable and will decay to the deeper, true vacuum. If the energy barrier between the false and true vacuum is high, however, then the decay rate is exponentially suppressed and the false vacuum may be very long-lived.
Analogous behavior is common in other physical systems. Open a carbonated drink and the CO₂, more stable as a gas once the pressure is released, comes out as bubbles. But the bubbles take a moment to appear, and they form on the sides of the bottle rather than throughout the liquid. A bubble has to pay an energy cost to create its surface—the boundary between gas and liquid—and small bubbles have a larger surface-to-volume ratio. The energy gained by moving CO₂ into the gas grows with the bubble’s volume, while the cost of its surface grows only with its area; so below a critical radius the cost wins and the bubble redissolves, and above it the gain wins and the bubble grows. Reaching that critical size takes a large enough chance fluctuation, which is why the bubbles take time to appear. It is also why they form on a surface or imperfection, which supplies part of the boundary for free.
A false vacuum decays by a similar mechanism. A bubble of the true vacuum forms through quantum or thermal fluctuations. If the bubble is large enough, the gains from the bubble’s volume outweigh the energy costs of the bubble wall and so the bubble will expand. The energy released would be enormous, accelerating the wall to nearly the speed of light. It cannot be outrun, and it gives almost no warning, since the wall travels nearly as fast as the gamma radiation that would announce it. Everything it reaches is destroyed.
Within the bubble, the local laws of physics will be radically altered. And in case you were hoping to somehow cheat death and survive the crossing, or at the very least for complex behavior to continue in the baby universe after our demise, Coleman & De Luccia (1980) showed gravitational collapse into a singularity is the more likely outcome:
Vacuum decay is the ultimate ecological catastrophe; in the new vacuum there are new constants of nature; after vacuum decay, not only is life as we know it impossible, so is chemistry as we know it. However, one could always draw stoic comfort from the possibility that perhaps in the course of time the new vacuum would sustain, if not life as we know it, at least some structures capable of knowing joy. This possibility has now been eliminated.
Seems bad.
I think we very likely live in a false vacuum—around 90%—but that deliberately triggering its decay is probably impossible, even for a galactic-scale civilization. I put the chance it could be done at around 25%, combining a 10% chance through Higgs metastability with a 16% chance through instabilities in quantum gravity. In the near term, with the resources of Earth or the solar system, it looks very unlikely. If we do live in a false vacuum and its decay can be deliberately triggered, this suggests a fully laissez-faire approach to space colonization is inadvisable, as any sufficiently advanced civilization could unilaterally destroy most of the value in our future light cone.
The Standard Model predicts a metastable vacuum
The Standard Model is our best theory of particle physics, describing all known non-gravitational phenomena. Under certain parameter ranges, it predicts that we live in a false vacuum, as the Higgs potential becomes negative at high energies.
Current experimental measurements place us very close to the boundary between absolute stability and metastability. Our best estimates suggest the universe is only metastable, but uncertainties are large enough that we cannot yet rule out absolute stability with high confidence, with the top quark mass driving most of the uncertainty; see Hiller et al. (2024) for further discussion. Under differing assumptions stability is disfavored anywhere from just 0.7
At central parameter estimates, the Higgs potential first turns negative around
The lack of hard experimental data makes this question impossible to definitively answer, but I think the extrapolation is probably valid. Neutrino masses suggest new physics at
While the Higgs potential is probably not stable, the lifetime of our universe is nevertheless very long. In Andreassen, Frost & Schwartz (2018) the lifetime is estimated at
Deliberately triggering electroweak vacuum decay is probably not possible
To trigger false vacuum decay requires creating a “bubble” where the Higgs value in the interior is greater than the boundary height of
Despite the pedestrian energy cost, even granting arbitrarily powerful futuristic technology there appears to be no way to reliably engineer this configuration. Our ability to create and manipulate the Higgs field is limited by the interactions allowed by the Standard Model, and it simply doesn’t give us the right tools.
Consider, first, whether a static lump of matter could catalyze decay. The issue is that, because every Standard Model particle gets its mass from the Higgs, raising
The paper Strumia (2023) discusses and rules out several more approaches. Colliding a small number of particles together cannot work, because the amplitude to create
Coherent collisions
If generic collisions don’t work, could a carefully engineered
Let’s start with the task of creating a single
A
But the biggest challenge is that we need to produce the Higgs boson in a very specific state: the inward
The background problem could be avoided if the muon and antimuon themselves arrived in a suitable
Tiny black holes
The final route discussed in the literature is black hole catalysis. This topic is controversial, with some authors arguing that tiny black holes strongly destabilize the vacuum (e.g., Burda et al. (2015); Gregory (2024) reviews the case) while others argue that an exponential suppression survives (Strumia (2022); Shkerin & Sibiryakov (2021); Geller & Telem (2026)). While I am not expert enough to assess these arguments in detail, the ‘decay remains exponentially suppressed’ view looks overall much more plausible to me and I would assign an 80% credence.
If micro black holes did catalyze Higgs decay, could an advanced civilization create them? A black hole forms once enough energy is packed inside its Schwarzschild radius
I’m not sure whether even a highly advanced civilization could engineer such a collision. Accelerating a muon to the Planck energy using existing methods would require a linac about
The collision cross-section would be on the order of the Planck area,
Even granted that tiny black holes can catalyze vacuum decay, it is not clear that these Planckian collisions generate black holes, as at these collision energies, quantum gravitational effects are strong. Substantially trans-Planckian collisions should create suitable black holes, and would also have a higher cross-section, thus reducing luminosity requirements, but would need commensurately larger accelerators.
Rather than colliding two trans-Planckian black holes, the alternative is to collide many sub-Planckian particles together simultaneously. By the Hoop conjecture, packing an energy
Summary
Triggering false vacuum decay looks hard. Conditional on a metastable Higgs potential:
I assign a 10% chance that an advanced civilization could trigger decay by creating the required coherent-Higgs state.
I assign a 20% chance that small black holes catalyze false vacuum decay and, conditional on that, a 30% chance that an advanced civilization could create the required black holes.
In the previous section I gave 70% credence that the Higgs potential is metastable, and so combined with the above estimates we find overall there is a
Closer analysis of the Higgs coherent-state engineering or many-particle-implosion route to black hole creation could sharpen our sense of their feasibility; the physics is, in principle, well-understood. The issue of black hole catalysis, too, should be resolvable by theory. Better measurements of the top-quark mass could confirm whether the Standard Model is metastable. But that will probably have to wait until at least HL-LHC data starts to be published in the early 2030s, or possibly a future electron-positron collider with cleaner backgrounds.
Whether the Standard Model can be extrapolated up to
Vacuum decay beyond the Standard Model
It is hard to say much with confidence about physics beyond the Standard Model. At extremely high energies the Standard Model must give way to a theory of quantum gravity, but such effects likely only become important at the Planck scale,
String theory, as far as anyone understands it, predicts a vast landscape of vacua that are generically metastable (see, e.g., Cicoli et al. (2023), for a recent review). If string theory is correct, our own universe is almost certainly metastable. Even if string theory is not correct, I think the more general picture of a quantum gravitational theory with numerous vacua seems likely. The existence of multiple metastable states is not uncommon even in mundane physical systems like water or cocoa butter, so it seems a priori plausible that quantum gravity is at least as rich. Indeed the Standard Model itself, when coupled to gravity, appears to permit many lower-dimensional solutions (Arkani-Hamed et al. (2007)) in the semiclassical regime where such calculations should be reliable.
Indirect observational evidence comes from the fine-tuning of the cosmological constant, for which anthropic selection from a much larger multiverse is the only plausible explanation that has been proposed (Weinberg (1987)). I suspect similar anthropic selection underlies the smallness of the Higgs mass (Agrawal et al. (1997)), although this is more controversial (see Craig (2023) for a recent review). The flatness and horizon problems also suggest our universe previously existed in a distinct, inflationary phase, consistent with there being multiple metastable states for the universe to occupy.
Taken together, all of this suggests there are probably multiple vacua. If so, it seems unlikely that ours is the one true, lowest-energy vacuum. I’d put the chance that our universe is metastable in this way at around 80%, independent of the Higgs instability discussed earlier, and would guess this is roughly in line with the expectation of most but by no means all theoretical physicists. It is, of course, hard to have much confidence here. Prospects for resolving it in the near term, whether by decisive theoretical arguments, experiments, or new observations, are in my view very dim. [4]
Given how little we understand quantum gravity, it is hard to say what triggering such a decay would even look like. It would presumably require physics at extremely high energies—perhaps the Planck-scale scattering discussed earlier, of the kind that would form micro black holes. But even that, I would guess, is generically not enough: as with Higgs vacuum decay, few-particle scattering doesn’t create the kinds of coherent states required, and to my knowledge no one has studied this in detail. If forced to guess, I’d put the chance that such a decay could be deliberately induced by an advanced civilization, conditional on the universe being metastable in this way, at 20%, for an overall 16% probability unconditionally for this channel.
Empirical bounds on triggering false vacuum decay
The universe hasn’t ended yet, which means that ordinary astrophysical processes have extremely low probability of causing false vacuum decay. This provides strong empirical constraints on triggering false vacuum decay through current or near-future technology, but ultimately it doesn’t tell us much about the capabilities of a galactic civilization.
Cosmic rays—high-energy protons and light nuclei of poorly understood origin—provide the most direct evidence. The Oh-My-God particle is the most energetic particle ever detected, with an energy of about
A naive estimate suggests that the highest-energy 2-body cosmic-ray collision in our past light cone occurred at energies of around
Three-body collisions at higher energies are very rare, and many-body collisions have never occurred. The cosmic-ray bounds give us very little information about multi-body collisions, and as we’ve already discussed, the Higgs instability probably would require a very large number of particles to be collided. So we can conclude that just creating a massive accelerator and accelerating things to
Other lines of evidence are, unfortunately, very weak. We know the early universe was extremely hot, for example, and Big Bang nucleosynthesis provides compelling evidence for temperatures as high as a few MeV. Physicists generally assume that the universe passed through much higher temperatures. Inflationary models could have reheated the universe as high as
Detecting even a sufficiently small primordial black hole would let us rule out black-hole catalysis. A hole light enough to be evaporating shrinks through the low-mass regime where catalysis would be strongest, so had any formed, and had catalysis worked, the universe would already have decayed. Their decay signatures would be reasonably visible, but none has been confirmed (Carr et al. (2026)), and it seems unlikely future searches will turn up such a population. Since we have no particular reason to think primordial black holes formed at all, this tells us little either way.
Appendix: A simple model for false vacuum decay on cosmological scales
If a galactic civilization could trigger false vacuum decay, it would destroy most—but not all—of the value in our future light cone.
We colonize outward from our galaxy at the speed of light. Each colonized galaxy triggers decay with some probability, and the resulting bubble spreads at the speed of light, destroying its future light cone. The universe is expanding, so light reaches only a finite comoving distance, the cosmological event horizon. We set this distance to 1.
First take colonization at the speed of light, with each galaxy triggering as soon as it is settled. A bubble that starts at
The fraction of galaxies that survive as a function of the expected number of vacuum-decay events
Now let colonization run at
If
The Hubble time
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In particular, the absence of proton decay rules out baryon-number-violating physics up to
GeV while various flavor-symmetry violations are ruled out at up to – GeV. Cosmology and astrophysics also provides non-trivial constraints on new physics. - ↩︎
Naturalness refers to the idea that parameters in a model should generically have values determined by the length-scales of the underlying phenomenon. In this case, all length-scales in physics are expected to ultimately derive from Planck-scale physics, and therefore all dimensionful parameters are generically also Planck-scale. I should emphasize this expectation is not an aesthetic preference but instead one derived from generic Bayesian reasoning over theory space: low-energy parameters are complicated mixtures of high-energy ones, so getting out a scale far below the Planck scale is unlikely. Analogous reasoning is routinely used in condensed-matter physics and fluid dynamics to correctly predict low-energy behavior in such systems. The natural expectation is therefore a desert: no new mass scales between the electroweak scale and the Planck scale.
Low scales can be generated naturally, but only through specific and limited mechanisms such as dimensional transmutation or a seesaw. The deeper obstacle is that the Standard Model is rigid: there are very few ways to couple new physics to it at all. Coupling through the Higgs requires a new mass scale put in by hand; coupling through a new gauge force means building a whole chiral gauge sector with its own anomaly-free fermions, and even the simplest such models are baroque.
While I think the above reasoning is correct, I should note that applications of naturalness are controversial. The Higgs mass itself is, famously, not natural, and pre-LHC model-building was often motivated to “solve” this problem. But unlike other applications of naturalness, the Higgs mass is strongly confounded by anthropics, and I think the obvious takeaway is that the Higgs mass is simply unnatural due to anthropic selection.
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The tau couples more strongly to the Higgs but is probably too unstable to work with. Free quarks are, of course, not available and the relevant hadron-antihadron cross-section is extremely low due to their composite nature.
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This is, for obvious reasons, not a popular view among those still working on fundamental physics! But in my experience it is common among formal high energy theorists, who have generally given up on any experimental evidence providing useful information about quantum gravity; and it is probably even more common among those that have quit physics entirely.
Gratifying to think “you would get the very highest energy densities by letting black holes decay to nothing by Hawking radiation, right?” just before the “Tiny black holes” section :3
Your link is academiawalled so I can’t read it. I would have thought that a false vacuum collapse only reformats potential energy that is already there, weird that this should have any gravitational effects. But I imagine the universe expands as quickly as it needs to in order to not collapse into a black hole, so would a false vacuum collapse starting far away announce itself through an increase in redshift in that direction?
If we use galaxy-sized iron magnets oscillating through galaxy-sized copper coils to extract power from universe expansion, we should be able to exponentially outgrow the pockets of Boltzmann false vacuum collapse bubbles indefinitely, right?
Google scholar “all 17 versions” has a bunch of free PDF links. With the google scholar browser extension, you can be looking at a paywalled article, then just click the extension button and it will find you a free PDF version of that article if google knows of one. (PaperPanda is another extension that supposedly does the same thing, but I haven’t tried it.)
I mean, this post is talking about simple tiling processes, but what about complex ones? E.g. ASI grabbing the matter in its bubble, and accelerating with time up to some 0.999*c or whatever, if it manages to print first stage receivers on distant matter with light or something tricky like that.
While your math is far above me, Greg Egan’s novel “Schild’s Ladder” is about the accidental creation of a lower energy vacuum state that expands spherically at the speed of light and “eats” everything in its path.
Well worth a read as he imagines a future 20,000 years ahead with a gripping finale.
lucky for us! since the true vacuum is less dense than the false vacuum (it’s more vacuum, after all!), it—like the bubbles—will detach and float away before it gets too large.