The sz-decrement generator
The thermal Sunyaev–Zel'dovich distortion of the microwave background across a cluster of Compton parameter 3·10⁻⁴, drawn against observing frequency and scaled to its own largest excursion. Photons are not created or destroyed by the scattering; they are moved up in frequency, so the spectrum has a deficit below and a surplus above, and between them a frequency at which the two exactly balance. That crossing is at 217.5 GHz, read off the drawn curve, and it is set by the shape of a 2.7255 K Planck spectrum rather than by anything about the cluster — the null is at the same frequency for a cluster of any mass, any gas temperature and any redshift, which makes it a test that no astrophysical foreground passes. The deepest part of the decrement is near 128 GHz and the strongest part of the increment near 370. Nothing here scales with distance: the quantity plotted is a fraction of a background that is the same brightness everywhere.
5 essays call
sz-decrement. The drawing above is what it returns with no arguments at all; every
call below passes it something, because a placement that passes nothing draws whichever member
of the family the generator happens to default to rather than the one its essay argues about.
Where it is called
Every figure listed here is the same construction drawn at different numbers, so a correction to one is a correction to all of them.
A shadow that does not get fainter with distance
Every other way of finding a cluster of galaxies gets harder the further away the cluster is. One does not. A cluster's hot gas scatters about one microwave background photon in a hundred to a higher frequency, and because the result is a fraction of a background rather than a flux from a source, the same cluster is exactly as detectable at ten billion light years as at one.
A length in centimetres, measured against an angle
A cluster's hot gas offers two line integrals of the same electrons — one linear in density, one quadratic. Two equations in two unknowns give back the path length in centimetres, and a length divided by the angle it subtends is a distance with no rung of any ladder beneath it.
A velocity that has the colour of the sky
A cluster moving through the microwave background shifts the light it scatters by a common Doppler factor, which leaves a spectrum shaped exactly like a change of temperature. That shape is loudest precisely where the hot gas falls silent — and it is the one shape the background itself already has.
A null that moves with the temperature
The frequency at which a cluster's hot gas vanishes from the microwave sky was derived for slow electrons. The electrons in a massive cluster move at a quarter of the speed of light, the null drifts half a gigahertz per keV, and what is left at the old frequency reads as a velocity as large as the ones being sought.
Too few clusters, or a scale that reads light
A catalogue selected on the microwave shadow is, past redshift one half, very nearly a catalogue of everything above a fixed mass — so its count by redshift is the growth of structure read almost directly. Almost, because the mass behind the threshold comes from a calibration, and a scale that reads twenty per cent light is indistinguishable from a universe with less in it.