1 nanometro!
A carbon nanotube is a tiny hollow tube of carbon atoms, linked in a pattern of hexagons like the sheets that make up graphite. A single-walled nanotube, whose wall is one atom thick, is typically about 1 nanometer across. A nanometer is a billionth of a meter. Nanotubes are far longer than they are wide, with lengths measured in micrometers, or millionths of a meter.
The explorer's 1 nanometer is the diameter of a typical single-walled nanotube, measured across the tube. Widths vary from tube to tube. One study of 34 single-walled nanotubes measured diameters between 0.7 and 1.2 nanometers.
Multi-walled nanotubes are several tubes nested one inside another, so they are wider. The ones Sumio Iijima described in 1991 had from 2 to about 50 walls, and were a few to a few tens of nanometers across.
Lengths vary too. The study of 34 tubes measured only tubes longer than 3 micrometers, so each was at least 2,500 times as long as it was wide.
Iijima reported carbon nanotubes in the journal Nature on November 7, 1991. He made them with an electric arc, a method like the one used to make buckyballs. Needle-like tubes grew on the arc's negative electrode. Under an electron microscope, each needle turned out to be a set of 2 to about 50 tubes of carbon sheets, nested one inside another.
The hexagons of carbon atoms in each tube wind around it in a spiral. Iijima noted that making these tubes suggested carbon structures could be built at scales much larger than buckyballs.
In 1993, two teams reported single-walled nanotubes. Iijima and Toshinari Ichihashi found tubes about 1 nanometer across. D. S. Bethune and colleagues, who added cobalt to the carbon, found tubes about 1.2 nanometers across.
A single nanotube is far too thin to see, but some kinds give off a near-infrared glow. In a 2009 study, researchers used that glow to film single nanotubes in water with a fluorescence microscope. The tubes bent back and forth as the liquid around them jostled them at random, a motion called Brownian motion.
From that bending, the researchers found that a nanotube's stiffness grows with the cube of its diameter. A tube twice as wide is eight times as hard to bend. Their great length for their width, their strength and their electrical properties make nanotubes well suited to uses in engineering materials and in medicine.