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Why does a heated poker go from red to white? Radiatrix glows by Planck’s law. Heat a blackbody and it emits more at every wavelength, while its peak slides toward shorter wavelengths, as Wien’s law says. Hot stars look blue-white; cool ones look red. Pixel-art black ceramic mug in 11 or 15 oz; equation, symbols and sources in the physics panel below.

Size

Details

Size & material11oz · 15oz

Black glossy ceramic mug with a C-handle. Lead- and BPA-free.

  • 11oz: 0.33 l
  • 15oz: 0.44 l
CareDishwasher & microwave safe

Dishwasher safe (top rack) or hand wash. Microwave safe.

ShippingFree US

Free US shipping. $10 flat shipping outside the US.

Made to order: about 10 days of production and handling before it ships.

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

Why does a poker in the fire glow red, then orange, then white? Radiatrix glows by the rule on this mug.

A blackbody is anything that absorbs all the light that falls on it. Heat one and it shines with a spectrum that depends only on its temperature. Max Planck found the formula for that spectrum in 1900 and published it in 1901. To make it work he had to assume that light of frequency ν is exchanged in lumps of energy hν. That assumption started quantum physics.

Turn up the temperature and two things happen. The body gets brighter at every wavelength: a hotter curve sits above a cooler one everywhere, red included. And the peak of the curve slides toward shorter wavelengths. That slide is Wien's displacement law, the second line: the peak wavelength times the temperature is a constant, about 2.9 millimetre-kelvins.

So HOTTER MEANS BLUER is a statement about the peak and the overall colour, not a loss of red. The Sun's surface, at about 5,800 kelvin, peaks near 500 nanometres. Cooler stars peak in the red and infrared and look orange-red; much hotter stars peak in the ultraviolet and look blue-white.

Radiatrix does not choose a colour. The temperature chooses it, and she just shines.

Equations

\[\begin{aligned} B_\nu(\nu,T) &= \frac{2h\nu^{3}}{c^{2}} \\ &\quad\times\frac{1}{e^{h\nu/(k_B T)} - 1} \end{aligned}\]
\[\lambda_{\max}\,T = b\]
\[b \approx 2.898\times10^{-3}\ \text{m K}\]
Symbols
SymbolMeaningUnit
\(B_\nu\) spectral radiance of a blackbody (power per area, per solid angle, per frequency) \(\mathrm{W·m⁻²·sr⁻¹·Hz⁻¹}\)
\(\nu\) frequency of the light \(\mathrm{Hz}\)
\(T\) absolute temperature \(\mathrm{K}\)
\(h\) Planck constant \(\mathrm{J·s}\)
\(c\) speed of light in vacuum \(\mathrm{m/s}\)
\(k_B\) Boltzmann constant \(\mathrm{J/K}\)
\(\lambda_{\max}\) wavelength at which the spectrum (per unit wavelength) peaks \(\mathrm{m}\)
\(b\) Wien displacement constant \(\mathrm{m·K}\)
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