1 santimetre!
Microwaves are radio waves at the high-frequency end of the radio spectrum, with wavelengths from about 1 millimeter to 1 meter (3.3 feet). The explorer shows a microwave with a wavelength of 1 centimeter (0.39 inch). That is 10 times the shortest microwave and one-hundredth of the longest, toward the short end of the band.
Microwaves, like light, are electromagnetic waves: waves of electric and magnetic energy moving together through space. A wave's wavelength is the distance from one crest to the next. Its frequency is the number of crests that pass a point each second, counted in hertz. The shorter the wavelength, the higher the frequency.
A 1-centimeter microwave has a frequency of about 30 gigahertz, so about 30 billion crests pass a point every second. The Occupational Safety and Health Administration (OSHA), the US workplace-safety agency, defines microwaves as frequencies from 300 megahertz (300 million crests a second) to 300 gigahertz. Those frequencies match wavelengths from 1 meter down to 1 millimeter.
The International Telecommunication Union (ITU), which coordinates radio use worldwide, names radio bands by the length of their waves. It calls 3โ30 gigahertz "centimetric waves" and 30โ300 gigahertz "millimetric waves". At 29.98 gigahertz, a 1-centimeter wave sits at the very top of the centimetric band.
A microwave oven makes its waves with an electron tube called a magnetron. The waves bounce off the oven's metal walls and pass through glass, paper and plastic, but food absorbs them. They make the water molecules in the food vibrate, and that motion produces the heat that cooks it.
Microwaves also carry telephone and television signals, and radar uses them to detect speeding cars. Doppler weather radar uses them to follow storms, and most communication satellites use them to send signals to the ground. In space communications, frequencies of 27.5โ30 gigahertz, with waves 1.0โ1.1 centimeters long, are known as the 30-gigahertz band.
In 1965, Arno Penzias and Robert Wilson of Bell Telephone Laboratories were measuring radio noise with a 20-foot (6-meter) horn antenna in Holmdel, New Jersey. At a wavelength of 7.35 centimeters, about seven times the explorer's wave, they picked up more noise than they could account for. It came equally from every direction in the sky.
A companion paper by physicists at Princeton University offered an explanation. The noise was the cosmic microwave background: light released when the universe was about 380,000 years old, which fills the whole universe. Penzias and Wilson shared the 1978 Nobel Prize in Physics "for their discovery of cosmic microwave background radiation".