The Dark Sector: Evidence Without Explanation

Contents
  1. The dynamical evidence
  2. Gravitational lensing
  3. Cosmological evidence
  4. Candidates and the searches that found nothing
  5. Modified dynamics as the rival hypothesis
  6. Dark energy
  7. Tensions and the honest status

Rotation curves, gravitational lensing, cluster dynamics, the microwave-background budget and the supernova acceleration all say the same thing: gravitating matter exceeds luminous matter by about a factor of five, and the expansion of the universe is speeding up. This chapter records what is actually measured, and states honestly that no laboratory detection of a dark-matter particle exists and no mechanism for the acceleration has been identified. It is the largest quantitative discrepancy in physics between a well-tested theory — general relativity plus the Standard Model — and observation, and it is the reason the treatise has a Frontiers part at all.

The chapter is organized observation-first, on purpose. Candidate theories are named only where a search has been carried out and returned a null result or a bound, so that the reader can see which statements rest on data and which rest on nothing. It depends on the cosmological model of Evidence-Based Cosmology, the microwave-background measurements of Experiment: The Cosmic Microwave Background and the lensing formalism of The Einstein Field Equations; its particle-physics side draws on Cosmic Rays and Astroparticle Physics and on the neutrino limits of Experiment: Neutrino Oscillations. What remains unresolved is carried forward to What We Observe but Do Not Understand; the closely related question of whether gravity itself needs modifying at the quantum level is separate and belongs to Quantum Gravity: The Honest Status. A standard review of the particle side is [Bertone:2005].

Derivation pending.

The Dark Sector: all derivations of this chapter are pending.

The dynamical evidence

Cluster velocity dispersions

[Reserved: Zwicky's application of the virial theorem to the Coma cluster, finding a velocity dispersion far larger than the luminous mass supports and coining dunkle Materie [Zwicky:1933]; the more careful English restatement four years later, with the mass-to-light ratio and its assumptions made explicit [Zwicky:1937]; the virial theorem itself from Central Forces and Statics; why a factor of order a hundred in mass-to-light ratio was disbelieved for four decades, and what later reduced it to a factor of a few hundred in solar units.]

Galaxy rotation curves

[Reserved: Rubin and Ford's spectroscopic rotation curve of Andromeda, flat far beyond the optical disc [Rubin:1970]; the survey of twenty-one spirals that made the result general and unavoidable [Rubin:1980]; the Keplerian expectation \(v\propto r^{-1/2}\) against the observed \(v\approx\text{const}\), and the implied enclosed mass \(M(r)\propto r\); the mass discrepancy as a function of radius rather than a single global number.]

Neutral-hydrogen curves beyond the optical disc

[Reserved: the \(21\,\mathrm{cm}\) hyperfine line as a kinematic tracer where there are no stars; Bosma's radio survey extending rotation curves to several optical radii [Bosma:1981]; the detailed mass decomposition of NGC 3198 into disc and halo, which showed that no plausible disc mass-to-light ratio removes the need for a halo [vanAlbada:1985]; the maximum-disc degeneracy and what breaks it.]

Galaxy stability and halo masses

[Reserved: the argument of Ostriker, Peebles and Yahil that cold self-gravitating discs are unstable to bar formation unless embedded in a massive halo, and their compilation of dynamical masses growing with the radius sampled [Ostriker:1974]; satellite kinematics and the timing argument for the Local Group; why an independent line of reasoning arriving at the same halo was what turned the discrepancy from an anomaly into a research programme.]

X-ray hydrostatic cluster masses

[Reserved: the hot intracluster medium in hydrostatic equilibrium, whose temperature and density profiles from Chandra give a total mass profile independent of galaxy kinematics [Vikhlinin:2006]; the resulting gas fraction of about \(12\,\mathrm{\%}\), consistent with the cosmological baryon fraction and inconsistent with the cluster being made of what it is made of; the baryon budget compared against Section 134.3.2.]

Gravitational lensing

Strong lensing

[Reserved: Einstein's short note on the lens-like action of a star [Einstein:1936], with the deflection angle from The Einstein Field Equations; the discovery of the twin quasar 0957+561 as the first observed gravitational lens [Walsh:1979]; Einstein rings and giant arcs in clusters; lensing masses as a purely geometric probe requiring no assumption of dynamical equilibrium, which is why they matter here.]

Weak lensing and shear surveys

[Reserved: the first detection of coherent image alignments behind clusters [Tyson:1990]; the statistical measurement of cosmic shear over wide fields, mapping the projected mass distribution directly; modern survey constraints from the Dark Energy Survey [Abbott:2022] and from KiDS [Asgari:2021]; the shear two-point function and the parameter combination \(S_{8}=\sigma_{8}\sqrt{\Omega_{m}/0.3}\) it measures, whose mild disagreement with the microwave background is taken up in Section 134.7.2.]

The Bullet Cluster

[Reserved: the merging cluster 1E 0657-56, in which the X-ray emitting gas — most of the baryonic mass — is displaced from the lensing mass peaks that track the galaxies [Clowe:2006]; why this is the single cleanest argument that the missing mass is not a failure of the gravitational force law, since here the mass and the baryons are spatially separated; the accompanying bound on the dark-matter self-interaction cross-section per unit mass, of order \(0.1\,\mathrm{m}^{2}/\mathrm{kg}\) [Markevitch:2004], which constrains self-interacting candidates.]

Microlensing and the compact-object bound

[Reserved: Paczyński's proposal to detect massive compact halo objects by the transient magnification of background stars [Paczynski:1986]; the EROS-2 survey of the Magellanic Clouds, which excluded such objects as the dominant halo component over roughly \(10^{-7}\) to \(10\) solar masses [Tisserand:2007]; the conclusion that the missing mass is not ordinary matter in dark lumps, which together with Section 134.3.2 closes off the astrophysically conservative options.]

Cosmological evidence

The microwave-background budget

[Reserved: the acoustic peak structure of the temperature and polarization power spectra, and the separate roles of baryons and of pressureless dark matter in setting the peak heights — \(\Omega_{b}h^{2}=0.0224\) against \(\Omega_{c}h^{2}=0.120\), a factor above five [Aghanim:2020]; the measurement itself in Experiment: The Cosmic Microwave Background; why a component that does not couple to photons is required by the ratio of odd to even peaks, not merely allowed by it.]

Nucleosynthesis and the baryon count

[Reserved: primordial abundances of deuterium, helium-3, helium-4 and lithium-7 as a one-parameter function of the baryon-to-photon ratio, and the resulting independent baryon density [Cyburt:2016]; its agreement with the microwave-background value to a few percent, which is a genuine concordance across an epoch ratio of about \(10^{5}\); the lithium-7 discrepancy stated honestly as unresolved; the nuclear reaction network from Nuclear Forces and Nuclear Structure and Stellar Structure and Nucleosynthesis.]

Baryon acoustic oscillations

[Reserved: the same sound horizon imprinted on the galaxy distribution, first detected in the correlation function of luminous red galaxies [Eisenstein:2005]; its use as a standard ruler and the modern spectroscopic measurement [Adame:2025] — customarily dated to 2024 by its report number, though the journal issue is 2025; the consistency of the ruler with the microwave-background calibration as a further constraint on the composition.]

Structure formation

[Reserved: why structure cannot grow from the observed microwave-background fluctuations without a component that begins clustering before recombination [Peebles:1982]; the cold dark matter picture of hierarchical structure formation [Blumenthal:1984]; the universal halo density profile found in simulations [Navarro:1997]; large simulations reproducing the observed galaxy clustering [Springel:2005]; the honest counterweight — the core-cusp, missing-satellite and too-big-to-fail discrepancies on sub-galactic scales, which remain open and may be baryonic physics rather than a failure of the model.]

Candidates and the searches that found nothing

What a candidate must satisfy

[Reserved: the observational requirements — non-baryonic, cold or at least non-relativistic at decoupling, dissipationless, stable over the age of the universe, and electrically neutral; the thermal relic calculation, in which the observed abundance follows from a weak-scale annihilation cross-section [Lee:1977a], and why that coincidence motivated a generation of searches; the exclusion of Standard Model neutrinos as the dominant component by the free-streaming argument and by the mass bound of Experiment: Neutrino Oscillations; the candidate catalogue and its status [Bertone:2005].]

Direct detection: null results

[Reserved: the nuclear-recoil signature in an ultra-low background target, and the two current leading liquid-xenon experiments — LUX-ZEPLIN, with a spin-independent cross-section limit near \(9\times 10^{-52}\,\mathrm{m}^{2}\) at a mass of about \(36\,\mathrm{GeV}/c^{2}\) [Aalbers:2023], and XENONnT with a comparable limit [Aprile:2023]; four decades of improvement and no signal; the approaching neutrino fog, at which coherent solar and atmospheric neutrino scattering becomes an irreducible background; the flat statement that there is no detection.]

The DAMA claim and its non-confirmation

[Reserved: the annual modulation reported by DAMA/LIBRA in sodium iodide, at high statistical significance and with the phase expected from the Earth's motion through the halo [Bernabei:2008]; why it is inconsistent with the null results of Section 134.4.2 under standard halo and interaction assumptions; the same-target replications, which do not reproduce it [Adhikari:2018]; treated here as the worked example of how a positive claim is adjudicated rather than as evidence.]

Axions

[Reserved: the Peccei–Quinn mechanism proposed to solve the strong CP problem of Quantum Chromodynamics [Peccei:1977], and the light pseudoscalar it implies [Weinberg:1978] [Wilczek:1978]; why an axion is simultaneously a cold dark matter candidate; the microwave-cavity haloscope and the ADMX exclusion over the mass range near \(2.7\,\mu\mathrm{eV}\) to \(3.3\,\mu\mathrm{eV}\) at Dine–Fischler–Srednicki–Zhitnitsky coupling [Du:2018]; helioscope and light-shining-through-walls searches; again, no detection.]

Collider and indirect searches

[Reserved: the mono-jet plus missing transverse momentum signature at the Large Hadron Collider and its null result [Aad:2021]; the compilation of exclusion limits, including those on supersymmetric candidates [Navas:2024]; indirect searches for annihilation products in gamma rays, positrons and neutrinos, and the astrophysical backgrounds that limit them; the invisible-width bound on light candidates from Electroweak Unification and the Higgs Boson.]

Primordial black holes

[Reserved: black holes formed from early-universe density perturbations as a candidate requiring no new particle [Carr:1974]; the windows closed by microlensing [Tisserand:2007], by microwave-background accretion constraints and by the gravitational-wave merger rate of Experiment: Gravitational Waves; the asteroid-mass window that remains open; a fair statement of what fraction of the halo is still allowed.]

Modified dynamics as the rival hypothesis

MOND and the radial-acceleration relation

[Reserved: Milgrom's proposal that the discrepancy appears below an acceleration scale \(a_{0}\approx1.2\times 10^{-10}\,\mathrm{m}/\mathrm{s}^{2}\) rather than beyond a length scale, and the resulting flat rotation curves and baryonic Tully–Fisher relation [Milgrom:1983]; the tight empirical radial-acceleration relation between observed and baryonic centripetal acceleration across 153 galaxies [McGaugh:2016], which is a real regularity that any dark-matter model must also explain; the review that states the case at its strongest [Sanders:2002].]

Where modified dynamics fails

[Reserved: the residual mass discrepancy in clusters, roughly a factor of two, which MOND does not remove; the Bullet Cluster separation of lensing mass from baryons [Clowe:2006]; the relativistic completion TeVeS [Bekenstein:2004] and its prediction of a gravitational-wave propagation speed differing from \(c\), excluded to a part in \(10^{15}\) by GW170817 and its electromagnetic counterpart [Abbott:2017]; the microwave-background peak structure, which no modified-inertia theory has reproduced; the even-handed conclusion that the acceleration-scale regularity is unexplained by either side.]

Dark energy

The supernova evidence for acceleration

[Reserved: type Ia supernovae as standardizable candles after light-curve shape correction; the two independent teams' finding that distant supernovae are fainter than a decelerating universe allows [Riess:1998] [Perlmutter:1999]; the modern compilation with about 1550 supernovae and its systematic error budget [Brout:2022]; the deceleration parameter and the transition redshift near \(z\approx0.6\); the honest caveat about progenitor evolution and dust.]

The cosmological constant and its problem

[Reserved: \(\Lambda\) as the one term general relativity permits without new physics, introduced for a static universe [Einstein:1917a] and now measured as \(\Omega_{\Lambda}\approx0.685\) [Aghanim:2020]; the discrepancy between the observed value and any naive quantum-field-theoretic vacuum energy estimate, of order \(10^{120}\) [Weinberg:1989]; anthropic and multiverse arguments recorded as what they are — not testable by any experiment now conceivable — with the bound that started them [Weinberg:1987]; the connection to Quantum Gravity: The Honest Status.]

The equation of state

[Reserved: the parametrization \(w=p/\rho c^{2}\) and its constraint \(w=-1.03\pm0.03\) from the combination of supernovae, baryon acoustic oscillations and the microwave background [Aghanim:2020]; the recent spectroscopic hint of evolving \(w\) [Adame:2025], which is to be reported at its stated significance as a hint and not as a detection, since the preference depends on the supernova compilation combined with it; what a confirmed \(w\neq-1\) would and would not imply.]

Tensions and the honest status

The Hubble tension

[Reserved: the local distance-ladder value \(H_{0}=73.04(104)\,\mathrm{km}/\mathrm{s}/\mathrm{Mpc}\) [Riess:2022] against the microwave-background inference \(67.36(54)\,\mathrm{km}/\mathrm{s}/\mathrm{Mpc}\) [Aghanim:2020], a disagreement of about five standard deviations; the tip-of-the-red-giant-branch calibration, which lands between them and weakens the significance [Freedman:2021]; the possibilities — an unidentified systematic on either side, or new physics before recombination — stated without preference.]

The $S_{8}$ tension

[Reserved: weak-lensing surveys measuring slightly less clustering than the microwave background extrapolates [Asgari:2021] [Abbott:2022], at the two-to-three standard deviation level; the sensitivity of the comparison to baryonic feedback in the modelling and to intrinsic alignments; why a tension at this significance is reported and not yet believed.]

What is and is not known

[Reserved: the closing ledger. Established beyond reasonable doubt — that gravitating mass exceeds luminous mass by about five to one on every scale from galaxies to the observable universe, that most of it is non-baryonic [Aghanim:2020] [Cyburt:2016], that it is spatially separable from the baryons [Clowe:2006], and that the expansion is accelerating [Riess:1998] [Perlmutter:1999]. Not established — the identity of the dark matter, the nature of the acceleration, and whether either requires physics beyond general relativity. Forwarded to What We Observe but Do Not Understand.]