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AzurwakeCherenkov Radiation / Light-Speed in WaterSticker

Azurwake – Cherenkov Radiation / Light-Speed in Water Physics Sticker

Regular price $6.99 USD
Regular price Sale price $6.99 USD
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Shipping calculated at checkout. Free US shipping · $10 flat shipping outside the US.
Size
3" × 3"
Surface
White
Made
To order · shipping times

Azurwake is a Pixelated Physics law character, one of our forces designs. Cherenkov radiation: a charged particle outrunning light in water emits a cone of blue light, like an optical sonic boom. This is a 3" × 3" pixel-art sticker. The physics panel below gives the equation, what each symbol means and the sources.

Size
Surface

Details

Size3″ × 3″

3″ × 3″ kiss-cut sticker.

Shipping

Free US shipping · $10 flat shipping outside the US, whatever's in your order.

Delivery times & where we ship

Returns & replacements21 days

Every item is printed to order, so we can’t accept returns or exchanges for change of mind, or if you ordered the wrong size or colour.

Print defect, misprint, damage or the wrong item? We’ll send a free replacement, or a refund if you prefer. Report it within 21 days of delivery with a photo; no need to send it back.

Full refund & replacement policy

The physics

Azurwake is breaking the speed limit, and it is perfectly legal.

Nothing outruns light in a vacuum. But in water, light travels at c/n, about three-quarters of c, because water’s refractive index is about 1.33. A fast enough charged particle can beat that. An electron needs a speed of only about 0.75c, roughly a quarter of an MeV of kinetic energy. Then it is faster than light travels in water, and the water answers with a cone of blue light.

The geometry is that of a jet’s sonic boom, which forms only when the jet outruns sound. Each point on the particle’s track sends out a wavelet of light; when the source outruns its own waves, the wavelets pile up along a cone. The light leaves at a fixed angle to the path, the first line on this page: for a particle near light speed in water, about 41°. The shock front itself, the V whose apex rides on the electron at the bow, has a half-angle of 90° minus that, about 49°.

Pavel Cherenkov, working under Sergei Vavilov at the Lebedev Institute of Physics, saw the faint blue glow in 1934 while studying pure liquids under gamma rays. In 1937 Ilya Frank and Igor Tamm explained it with classical electrodynamics. Their formula, the second line, gives the number of photons per length and per wavelength. It grows towards short wavelengths, which is why the glow looks blue-violet. The three shared the 1958 Nobel Prize.

It is the bluish glow in the water pools that shield some nuclear reactors. She never exceeds c, only the light in the water.

Faster than light. In water. Legally.

Equations

\[\cos\theta = \frac{1}{n\beta}, \qquad \beta > \frac{1}{n}\]
\[\begin{aligned} \frac{d^2N}{dx\,d\lambda} &= \frac{2\pi\alpha z^2}{\lambda^2} \\ &\quad\times\left(1-\frac{1}{\beta^2 n^2}\right) \end{aligned}\]
Symbols
SymbolMeaningUnit
\(\theta\) angle between the emitted light and the particle's path (the wavefront cone has half-angle 90° − θ) \(\mathrm{rad}\)
\(n\) refractive index of the medium, about 1.33 for water \(\mathrm{1}\)
\(\beta\) particle speed as a fraction of c \(\mathrm{1}\)
\(N\) number of photons emitted \(\mathrm{1}\)
\(x\) distance travelled by the particle \(\mathrm{m}\)
\(\lambda\) wavelength of the emitted light \(\mathrm{m}\)
\(\alpha\) fine-structure constant, about 1/137 \(\mathrm{1}\)
\(z\) charge of the particle in units of e \(\mathrm{1}\)
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