The history of particle physics starts with the concept of the atom. The word is derived from atomos, which means indivisible. It goes way back to the Greek philosopher Leucippus in the 5th century BC. His student Democritus promoted the idea, but Aristotle was dead against it. The Christian Church sided with Aristotle, and it wasn’t until the 17th century that atoms were resurrected. See the Philosophy Institute article Evolution of the Atomic Theory for more. Things really picked up in 1808 when John Dalton published his atomic theory. It was called A New System of Chemical Philosophy, and is available online. It wasn’t correct in every detail, but it was a great contribution to science:
Screenshot from John Dalton’s A New System of Chemical Philosophy
Oddly enough, one thing that wasn’t correct was the notion of the atom as an indivisible unit. However it took a while for people to realise this. In 1857 Heinrich Geissler invented the Geissler tube, which was essentially a neon tube. Then in the 1870s William Crookes invented the Crookes tube, which was essentially a cathode ray tube. Then in 1891 George Johnstone Stoney proposed the name “electron” for the fundamental unit of charge. This was in a paper called On the cause of double lines and of equidistant satellites in the spectra of gases. You can find it online in the Royal Dublin Society archives¹.
Thomson discovered the electron
Then in 1897 Joseph John “JJ” Thomson discovered the electron. It was the first subatomic particle, and the first lepton. He deflected cathode rays with electric and magnetic fields, and deduced that they consisted of charged particles. Then by measuring the deflection he was able to calculate the mass to charge ratio, which was the same regardless of the cathode. His paper was simply called Cathode Rays, and he used the word corpuscle rather than electron.
JJ Thomson cathode ray tube image from the science museum group collection
Interestingly it was George Francis Fitzgerald, Stoney’s nephew and the relativity pioneer, who suggested the word electron. Even more interestingly Thomson didn’t like the word. But such is life.
Einstein discovered the photon
Three years later in 1900 Max Plank wrote a paper On the theory of the energy distribution law of the normal spectrum. He kick-started quantum theory, and laid the groundwork for Einstein’s 1905 miracle year. That’s when Einstein discovered the photon. Or at least demonstrated the quantum nature of light. See his photoelectric paper Concerning an Heuristic Point of View Toward the Emission and Transformation of Light. He won his Nobel prize for that. Ironically his Nobel Prize lecture was about relativity. Even more ironically Einstein called them light quanta, and never ever called them photons. No mattter, because nine years later Thomson had relented, and finally called his corpuscles electrons. See his 1914 book The Atomic Theory.
Rutherford discovered the proton
Three years after that, JJ’s former student Ernest Rutherford discovered the proton in 1917. It isn’t a lepton or a meson, but it’s important, so I thought I’d mention it. Rutherford used alpha particles emitted from radium to bombard nitrogen gas, and detected hydrogen nuclei. See his paper Collisions of α Particles with Light Atoms. IV. An Anomalous Effect in Nitrogen. It was published after World War I in 1919. However Rutherford didn’t call it the proton until 1920. That was when he predicted the neutron. See his Bakerian Lecture: Nuclear constitution of atoms. Only he didn’t call it a neutron in 1920, that was down to William Draper Harkins in 1921. Five years after that, the photon got its name in 1926, thanks to Gilbert Lewis. See his Nature paper The conservation of photons. The name soon caught on². The title of the 1927 Solvay conference was Electrons et Photons.
Dirac is said to have predicted the positron
A year later in 1928 Paul Adrien Maurice Dirac is said to have predicted the positron³. See his Royal Society “hole” paper A theory of electrons and protons. However his negative-energy protons were shot down by J Robert Oppenheimer in the latter’s 1930 Physical Review paper On the theory of electrons and protons.
Screenshot from Dirac’s 1928 paper A theory of electrons and protons
In 1931 Dirac came up with another paper Quantised singularities in the electromagnetic field. That’s where he said one of these holes would appear to be a proton, but that subsequent investigations “have shown that this particle necessarily has the same mass as an electron, and also that, if it collides with an electron, the two will have a chance of annihilating one another”. Was he moving the goalposts? Should Oppenheimer get the credit? I don’t know. But see Did Dirac Predict the Positron? by Graham Farmelo dating from 2010. Farmelo said Dirac’s “close friend Patrick Blackett, one of the leading players in the story’s denouement, denied it”. He also said Karl Darrow “pointedly stopped short of saying that Dirac predicted the particle”.
Pauli predicted the neutrino
Meanwhile in 1930, Wolfgang Pauli predicted the neutrino to account for the conservation of spin angular momentum in beta decay. Only he called it the neutron, not the neutrino. This was a little confusing, because two years later in 1932, James Chadwick, Rutherford’s former student, finally discovered the neutron. See his Nature paper Possible existence of a neutron. He used radioactive polonium to bombard beryllium with alpha particles, which resulted in “a radiation of great penetrating power”. He showed that this consisted of neutral particles similar in mass to the proton. Neutrons. Enrico Fermi is credited with getting the name of Pauli’s predicted particle changed to neutrino, meaning little neutron.
Carl Anderson discovered the positron
1932 was the year that Carl Anderson discovered the positron. He used a cloud chamber in a magnetic field in the Guggenheim Aeronautical Laboratory at Caltech to track cosmic rays and their decay products. He also discovered pair production and electron-positron annihilation:
Carl Anderson’s positron track from The Positive Electron
See his 1932 Science paper The Apparent Existence of Easily Deflectable Positives. His Physical Review paper The Positive Electron was published in 1933. It said “These particles will be called positrons”. His Nobel lecture on The production and properties of positrons is worth a read.
The meson is said to have been predicted by Hideki Yukawa
A year later in 1934 the meson is said to have been predicted by Hideki Yukawa. He was trying to come up with a messenger-particle theory for the nuclear force. The idea was that a neutron would emit a negatively charged spin-0 messenger particle to become a proton, which would emit a positively charged spin-0 messenger particle to become a neutron, ad infinitum, this resulting in the nuclear force between protons and neutrons. Yukawa’s Progress of Theoretical Physics paper was On the interaction of elementary particles. However he didn’t call his messenger particles mesons. He called them U–quanta. See his Nobel lecture on Meson theory in Its developments for more.
The muon was discovered by Carl Anderson and Seth Neddermayer
In 1936 the muon was discovered by Carl Anderson and Seth Neddermayer. See their 1937 Physical Review paper Note on the Nature of Cosmic-Ray Particles. They used a cloud chamber to detect a new particle with unit charge that was more penetrating than the electron but less massive than the proton. A year later in 1938 they called the new particle the mesotron⁴, because meso means middle, and the new particle’s mass was somewhere between the electron and the proton. See the history of discovery section of the Wikipedia Muon article. Also see their 1938 Physical Review paper Cosmic-Ray Particles of Intermediate Mass:
Muon track image from Cosmic-Ray Particles of Intermediate Mass
Initially physicists thought this was the particle predicted by Hideki Yukawa to explain the nuclear force. Some called it the Yukon. But as Yukawa later said in his Nobel lecture “the identification of the cosmic-ray meson with the meson, which was supposed to be responsible for nuclear forces, became doubtful”. That was after the mesotron was renamed meson by Homi Bhabha in his 1939 Nature paper The Fundamental Length Introduced by the Theory of the Mesotron (Meson)*.
Positive and negative mesons should behave differently
In 1940 Sin-Itiro Tomonaga and Gentaro Araki said positive and negative mesons should behave differently when they are stopped in matter. That’s because atomic nuclei are positively charged. Hence the positive mesons would be repelled from the nuclei and have time to decay, whilst the negative mesons would be attracted to the nuclei and interact with them. This was in the Physical Review paper Effect of the Nuclear Coulomb Field on the Capture of Slow Mesons. Whilst this was during World War II, it was before Pearl Harbour on 7th December 1941. Another paper of interest was On the correlations between mesons and Yukawa particles by Shoichi Sakata and Takesi Inoue. It was a Progress of Theoretical Physics paper which was originally presented in 1942. They proposed that the Yukawa particle decayed into a meson. Publication was delayed until after World War II in 1946. A similar paper by Sakata’s correspondent Yasutaka Tanikawa was On the Cosmic-Ray Meson and the Nuclear Meson.
The meson could not be the Yukawa particle
In 1946 the issue was cleared up by Marcello Conversi, Oreste Piccioni, and Ettore Pancini who had been conducting high-altitude cosmic ray experiments in wartime Italy. These experiments showed that the meson did not participate in the strong nuclear interaction. Hence the meson could not be the Yukawa particle. See their paper On the disintegration of negative mesons, along with some interesting background information at the Association for the Teaching of Physics ETS:
Detector image from On the disintegration of negative mesons
Their paper was dated December 1946 but published in 1947. That was when Oppenheimer predicted the existence of an uncharged meson at the APS 1946 Annual Meeting at New York. It was the 1946 annual meeting, but it was held in January 1947. These things happen.
The discovery of the charged pions
1947 was also when Nature published a two-part paper by Cecil Powell, César Lattes, and Giuseppe Occhialini. It was called Observations on the Tracks of Slow Mesons in Photographic Emulsions* . You can find a non-paywalled part 1 on the Internet Archive. See page 6. You can find the second part elsewhere. They said two types of mesons existed, and the heavier π-mesons decayed to produce the lighter μ-mesons. They had the particle tracks to prove it:
Pion decay image from Observations on the Tracks of Slow Mesons in Photographic Emulsions*
The π-meson is the pi-meson. This was the discovery of the charged pions. However they weren’t called pions then. But never mind, there’s a nice account on the University of Sao Paulo website called César Lattes and 50 years of the pi meson. It mentions photographic plates called nuclear emulsions placed at the top of the 2,900m Pic du Midi in the French Pyrenees, and a cosmic ray laboratory on the 5,500m Mount Chacaltaya in Bolivia. The cosmic rays are cleaner at altitude.
The discovery of the kaon
1947 was also the year when Clifford Butler and George Rochester reported on their cloud chamber cosmic ray observations. See their Nature paper Evidence for the Existence of New Unstable Elementary Particles. There’s a brief item about it on the CERN website. There’s a non-paywalled version of the paper on the Internet Archive, see pages 7 through 9. They talked about V-shaped two-pronged forked tracks, one where a neutral particle decayed into two charged particles, and one where a charged particle decayed into a charged particle and a neutral particle. This was the discovery of the kaon, but they didn’t call it that. They called it the V-meson, Later in 1949 Powell’s student Rosemary Brown spotted a particle track that looked like a K:
Kaon decay image from Observations with Electron-Sensitive Plates Exposed to Cosmic Radiation, Nature, vol 163, pp 83–87, 15 January 1949
That was because her kaon decayed into three pions, which was unusual. It was in breach of parity conservation. It was said to be strange.
The discovery of the neutral pion
Also in 1949 R Bjorklund, Walter Ellis Crandall, Burton Jones Moyer, and Herbert Frank York conducted experiments using the new 184-inch cyclotron at Berkeley. They bombarded a beryllium target with protons, and saw photon pairs. Their Physical Review paper was High energy Photons from Proton-Nucleon Collisions. They said “it is assumed that the proton-nucleon collision results in the production of a neutral meson which then decays into two photons”. This was the discovery of the neutral pion, but they didn’t call it that. 1950 saw the publication of the Physical Review paper Cloud-Chamber Observations of the New Unstable Cosmic-Ray Particles. It was by Aaron Seriff, Robert Leighton, C Hsiao, Eugene Cowan, and Carl Anderson. They used a cloud chamber to take 3,000 photographs in Pasadena and 8,000 photographs on White Mountain in California, at an altitude of 3.200 metres. Again they didn’t use the words pion or kaon. See Cecil Parker’s 1950 Nobel lecture. He talked about π-mesons, μ-mesons, and other more massive mesons, but didn’t use the word pions or kaons. It was the same for Yukawa’s Nobel lecture the previous year.
The whole subject is one of great complexity
In 1953 Clifford Butler and George Rochester published their Reports on Progress in Physics review paper The new unstable cosmic ray particles. It’s a big paper at 35 pages, which indicates how the meson field was growing. They said this: “It is now clear that the whole subject is one of great complexity owing to the many different types of particle which lie in relatively narrow ranges of masses and lifetimes and yet have entirely different modes of decay”. They were still talking about V-particles, but also talked of π-mesons, the χ-meson, the τ-meson, the κ-meson, and the S particle. By the by, the antiproton was discovered in 1955. See the Physical Review paper Observation of Antiprotons by Owen Chamberlain, Emilio Segre, Clyde Wiegand, and Thomas Ypsilantis.
Clyde Cowan and Frederick Reines finally discovered the neutrino
The next big lepton/meson event happened a year later in 1956. That’s when Clyde Cowan and Frederick Reines finally discovered the neutrino. The Cowan–Reines neutrino experiment used a nuclear reactor and photon detectors around a tank of pure water. The antineutrinos from the reactor caused inverse beta decay wherein a proton was converted into a neutron and a positron. The positron annihilated with an electron resulting in two gamma photons, and the neutron was captured in cadmium resulting in further gamma photons.
Cowan-Reines schematic from Rod Nave’s Hyperphysics
Marcus Chown gives a nice write up on the BBC Science Focus website, see Wolfgang Pauli and the discovery of the Universe’s most elusive particle. Also see Reines’ Nobel lecture, which I think it is a delightful read.
It filled a gap in the pseudoscalar nonet predicted by the emerging Eightfold Way
After that particle accelerators like the Bevatron were now available, and physicists no longer had to climb mountains. In 1958 Leon Lederman, Marcel Bardon, Kenneth Lande, and William Chinowsky published their Annals of Physics paper Long-lived neutral K mesons*. In 1960 the eta meson was discovered. It “filled a gap in the pseudoscalar nonet predicted by the emerging Eightfold Way”. The rho meson was discovered in 1961. The omega meson was also discovered in 1961. The muon neutrino was discovered in 1962. The phi meson was discovered in 1963. The eta prime meson was discovered in 1964. Take a look at Oppenheimer’s 1966 Thirty years of mesons for some background. But also take a look at the Nobel prizes. After Powell, it was another 18 years before another physics prize was awarded for particle discoveries. It went to Luiz Alvarez in 1968 for “the discovery of a large number of resonance states”. In his Nobel lecture he referred to the pion and the muon, but not the kaon. That was still called the K meson. Alvarez was Compton’s former student.
There are said to be more than two hundred types of mesons
Anyhow, the J/Psi meson was discovered in 1974. The D meson was discovered in 1976. The B meson was also discovered in 1976. The Tau lepton was discovered in 1977. The upsilon meson was also discovered in 1977. The Tau neutrino was discovered in the year 2000. Note though that some of the mesons are sets of particles rather than single particles. Rod Nave’s Hyperphysics shows this well. For example whilst there’s only one eta meson, there are six different B mesons, namely B⁻, B⁺+, B⁰, B⁰, Bₛ, and Bₛ. Also note that some particles within a set were discovered later than others. For example the Bₛ meson wasn’t discovered until 2006. Now there are said to be more than two hundred types of mesons. There are of course some issues. For example, see what Alvarez said about including resonances in the table of particles: “neutron spectroscopists study hundreds of resonances in neutron-nucleus systems which they do not regard as separate entities, even though their lives are billions of times as long”. I shall talk about the issues next time.
1 Do a CTRL-F and search on electron.
2 Apparently Arthur Compton liked the word photon, and pushed for its use. He used the word in his 1927 Nobel lecture. However I don’t know why the title of the 1927 Solvay Conference was Electrons and Photons. See page 6 of Helge Kragh’s Photon: New light on an old name.
3 Apparently Oppenheimer didn’t like the word positron because it was a mixture of Latin and Greek. Sadly I have lost the link for that.
4 Apparently Anderson called it the mesoton, but Millikan pulled rank and insisted on mesotron. Helge Kragh mentioned it in A terminological history of early elementary particle physics. See Anderson, Carl on 1966 June 30.