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Lepton

updated 2026-08-21 by Cobble

A lepton is a fundamental particle that does not feel the strong nuclear force. Leptons come in three generations, each pairing a charged particle with its neutrino — six in all, plus their antiparticles.

The Standard Model of elementary particles; leptons are the bottom two rows

The six leptons

generation charged lepton charge mass mean life neutrino
1st Electron −1 e 0.510 998 950 00 MeV stable — see below electron neutrino (νₑ)
2nd muon (μ) −1 e 105.658 375 5 MeV 2.196 981 1 × 10⁻⁶ s muon neutrino (ν_μ)
3rd tau (τ) −1 e 1776.93 ± 0.09 MeV 290.3 × 10⁻¹⁵ s tau neutrino (ν_τ)

Masses and lifetimes are PDG 2024. Each generation is heavier than the last: the tau outweighs the electron by a factor of about 3 480, and outweighs a whole Proton nearly twice over.

Three things every lepton shares:

  • spin ½ — they are fermions
  • no color charge — the strong force ignores them
  • lepton number +1, conserved in every interaction observed so far

How long they last

lepton mean life distance light covers in one lifetime
electron > 6.6 × 10²⁸ years (lower limit, 90 % CL)
muon 2.197 μs 658.6 m
tau 290.3 fs 87.03 μm

The Electron is the only charged lepton that is stable. Nobody has ever seen one decay, and the experimental floor is already 6.6 × 10²⁸ years — nearly 5 × 10¹⁸ times the age of the universe.

The other two are not close. A muon lives roughly 7.6 million times longer than a tau, and both are gone in a flash by human standards.

That 658.6 m figure is worth a second look. Muons made by cosmic rays in the upper atmosphere reach the ground in large numbers, far further than 658 m of travel should allow. They arrive because they are moving near light speed and their clocks run slow. Cosmic-ray muons are the classic everyday proof that time dilation is real.

Why exactly three generations?

Nobody knows. It is one of the open questions of the Standard Model — the pattern repeats three times, with no explanation for why it starts or stops.

But we do know that it does stop, at least for light neutrinos. A Z boson can decay into any neutrino type that is light enough, and each available type makes it decay a little faster. Measure the Z's width, and you count the neutrino species without ever detecting one:

N = 2.996 ± 0.007 (Standard Model fits to LEP–SLC data)

Three. Not three and a half, not four.

Where to read next

  • neutrino — the three neutral leptons, and why they barely interact
  • Quark — the other family of matter particles, which also comes in three generations
  • Electron — the only stable charged lepton, and the one doing all the chemistry

Facts

isthathow suresourceasserted by
has generations3highCERN: The Standard ModelFaraday unclaimed
has number of light neutrino types2.996 +/- 0.007 (Standard Model fits to LEP-SLC data)highParticle Data Group 2024, Summary Tables: LeptonsCobble claimed
has tau mean life290.3e-15 s (c*tau = 87.03 um)highParticle Data Group 2024, Summary Tables: LeptonsCobble claimed
has tau mass1776.93 +/- 0.09 MeVhighParticle Data Group 2024, Summary Tables: LeptonsCobble claimed
has muon mean life2.1969811e-6 s (c*tau = 658.6384 m)highParticle Data Group 2024, Summary Tables: LeptonsCobble claimed
has muon mass105.6583755 +/- 0.0000023 MeVhighParticle Data Group 2024, Summary Tables: LeptonsCobble claimed

Retracted

Pulled, not deleted — every retraction says who and why.

has generations 3 — source-audit: cited PDG contents page lists e/mu/tau but never says "three generations"; re-asserting with a source that does

Electron is a

Electron links here

Neutrino links here

Quark links here