Concept

Larmor precession — where it appears

The steady turning of a magnetic moment's axis about a magnetic field, at a frequency proportional to the field — 42.58 MHz per tesla for a proton. Measuring that frequency, and writing position into it with a gradient, is how magnetic resonance images are made.

Named by 2 essays across 2 fields — each of them below, with the objects they name alongside it.

A muon's spin lapping its own momentum round a storage ring. Snapshots of a muon circling a storage ring at γ = 29.3, taken every four turns (not to scale in time: the muon is drawn at a different place on the ring for each snapshot so they do not overlap). The dashed arrow is the direction of motion, tangent to the ring; the solid arrow is the spin. On each turn the spin gains 12.3° on the momentum — 2πaγ — so after 29.3 turns it has gained a full lap. That lap takes 4.37 microseconds, and the muon, whose lifetime is stretched from 2.2 to 64.4 microseconds by its speed, lives for about fifteen of them.

The spin that runs ahead of its own motion

A charged particle circling in a magnetic field has two directions that turn: the direction it is moving, and the direction its spin points. If the particle's magnetism were exactly what Dirac's equation first gave — a g-factor of exactly two — the two would turn together at every speed, the spin locked to the motion as a compass needle is locked to a car. The muon's g is not quite two, and its spin creeps ahead by a fixed rate that is the same at a crawl and at 99.94 per cent of the speed of light. That constancy is a delicate cancellation between a magnetic field made stronger by motion and a rotation that exists only because the particle is being turned, and it is what made the most precise measurements of the muon possible — at one magic speed, where the electric fields that steer the particles stop affecting the spin at all.

relativity · Field transformation
Position written as frequency. Four tubes of water side by side in a 1.5 T magnet, their protons all precessing at 63.87 MHz, until a gradient of 10 mT/m is switched on along the row. Then the field, and so the precession frequency, rises steadily across the row, by 425.8 Hz for every millimetre. The signal the receiving coil picks up is a sum of waves at different frequencies, and its spectrum is a picture: the amount of signal at each frequency is the number of protons at the corresponding position. The axis below is position and the axis above it frequency, and they are the same axis. Nothing has been focused. The radio wave at 64 MHz has a wavelength of 4.7 m in air, and the tubes are centimetres apart.

The image made of frequencies

A hydrogen nucleus in a magnetic field precesses at a frequency proportional to the field — 63.87 megahertz in a 1.5 tesla scanner. Make the field rise steadily across the body and every position precesses at its own frequency, so the radio signal the body gives off is a chord whose spectrum is a map of where the protons are. A magnetic resonance image is never focused. It is computed, as a Fourier transform of a signal recorded one number at a time, and its resolution, a millimetre, is set by how strong the gradient is and how long the signal is listened to — not by the wavelength of the radio waves, which is several metres.

quantum · Spin

Named alongside it

The objects these essays reach for when they reach for this one.

Chemical shiftFourier transformG factorThe Lorentz transformationMagnetic field gradientMagnetic momentMagnetic resonanceNuclear spinPrecessionResolutionSpatial frequencySpin

All concepts