1 picometer!
Gamma rays are a kind of electromagnetic radiation, the family of waves that includes visible light and radio waves. They have the shortest wavelengths and the most energy of any part of that family. The wavelength shown here is 1 picometer, about the wavelength of the gamma rays given off by radioactive cobalt-60. A picometer is a trillionth of a meter, or a thousandth of a nanometer.
A wavelength is the distance from one crest of a wave to the next. NASA counts any electromagnetic wave shorter than about 10 picometers as a gamma ray. The explorer's figure, 1 picometer, is a tenth of that boundary. The shorter the wave, the more energy it carries, so astronomers who study gamma rays usually describe them by their energy instead.
Gamma rays overlap with X-rays, and the two are told apart in different ways. The U.S. Environmental Protection Agency separates them by where they come from: gamma rays start inside an atom's nucleus, while X-rays come from outside it. Astronomers separate them by energy alone.
Nearly every time a cobalt-60 atom decays, it releases two gamma rays, with wavelengths of about 1.06 and 0.93 picometers. The explorer's 1 picometer lies between them.
In space, gamma rays come from the hottest and most energetic objects: neutron stars, exploding stars called supernovae, and the regions around black holes. The most powerful flashes, called gamma-ray bursts, can release more energy in 10 seconds than the Sun will give off in its whole lifetime of about 10 billion years.
On Earth, gamma rays come from lightning, nuclear explosions and radioactive decay. Cobalt-60, for example, forms when steel inside a nuclear reactor is struck by neutrons, and half of any sample decays every 5.27 years. Hospitals use its gamma rays for radiation therapy.
Gamma rays can pass completely through the human body, damaging tissue and DNA on the way. Stopping them can take several inches of a dense metal such as lead, or a few feet of concrete. Their wavelengths are so short that they can pass through the empty space inside the atoms of a detector.
Unlike light and X-rays, gamma rays cannot be caught and reflected by mirrors. Instead, gamma-ray detectors hold blocks of densely packed crystal. A gamma ray passing through knocks into electrons in the crystal, and those collisions make a signal the detector can record. Earth's atmosphere absorbs gamma rays from space, so gamma-ray telescopes such as NASA's Fermi work from orbit.