Quarkonium
In particle physics , quarkonium (plural: quarkonia) denotes the bound states of a quark and its anti- quark. In other words, these are mesons without an electrical charge or flavor .
Bound states of heavy quarks ( ) have their own names: bound states (i.e. charm quark and antiquark) are called Charmonium , and bound states are called Bottomonium . A proof of the hypothetical system toponium is extremely difficult if not impossible, since its formation time is probably longer than the lifetime of the top quark , which is extremely short-lived due to its high mass.
Bound quark-antiquark states of the light quarks ( ) mix quantum-mechanically due to the small mass difference - especially with each other . Therefore, the mesons formed from them cannot be assigned to a single type of quark.
nomenclature
Quantum Numbers and Spectroscopic States
The name quarkonium is analogous to positronium , in which an electron and a positron are bound to. As with positronium, Quarkonia is characterized by the following quantum numbers :
- Principal quantum number
- Coupling of quark spins (numerical value or ) or multiplicity (numerical value or )
- Orbital angular momentum and
- Total angular momentum (possible values due to the spin-orbit coupling )
orbital angular pulse |
Code letter |
---|---|
0 | S. |
1 | P |
2 | D. |
3 | F. |
4th | G |
5 | H |
6th | I. |
7th | K |
... | ... |
in the nomenclature ( term symbol ) or (spectroscopic designation), whereby the orbital angular momentum is indicated by a capital letter (see table).
Note the following difference in the naming: While positronium the nomenclature of nuclear physics applies to the principal quantum number ( for the number of nodes of the radial wave function , small for the orbital momentum ), using the nomenclature of at Quarkonium nuclear physics with . A 2 3 P 1 positronium therefore corresponds to a 1 3 P 1 harmonium.
In addition to the total angular momentum, only:
- the parity and
- the charge conjugation .
Orbital angular momentum and quark spin coupling can be derived from this.
Mesons
The following nomenclature applies to the mesons formed from these states
observed: |
Orbital angular momentum |
coupled spin |
Total angular momentum |
Basic state ( ) |
Mixture of and Isospin = 1
|
Mixture of , , isospin = 0
|
Charmonium |
Bottomonium |
---|---|---|---|---|---|---|---|---|
straight S, D, G, ...
|
just 0
|
0, 2, 4, ... | 1 1 S 0 | Pion | η meson | |||
odd 1
|
1, 2, 3, ... | 1 3 S 1 | Rho meson | Omega meson , phi meson | Y meson | |||
odd P, F, H, ...
|
just 0
|
1, 3, 5, ... | 1 1 P 1 | |||||
odd 1
|
0, 1, 2, ... | 1 3 P 0 |
- ↑ historical reasons the 1 - ground state as J / ψ meson called
- For the mesons formed from heavy quarks ( ), the spectroscopic designation ( ) is given, if known - e.g. B. , as well as another index - z. B. . The latter is not necessary with d. H. at , because then . If a spectroscopic assignment is not possible due to a lack of data, the mass is given in MeV / c 2 for a more detailed description , e.g. B. .
- The spectroscopic designation is not used for the mesons formed from light quarks ( ); instead, the mass is given in MeV / c 2 for a more detailed description .
- This information can be omitted for the lowest states - so and .
Charmonia and Bottomonia
The quantum numbers of the X (3872) particle are the subject of current studies, its identity has not been fully clarified. It can be:
- a candidate for the 1 1 D 2 state;
- a hybrid Charmonium state;
- a molecule.
In 2005 the BaBar experiment published the discovery of the new state Y (4260). The observations were confirmed by the CLEO and Belle experiments . At first the new particle was mistaken for a charmonium, but now the observations suggest more exotic explanations, such as a D “molecule”, a tetraquark, or a hybrid meson.
J PC | Term symbol n 2 S + 1 L J | Charmonium | Bottomonium | ||
---|---|---|---|---|---|
Particles | Mass (MeV / c 2 ) |
Particles | Mass (MeV / c 2 ) |
||
0 - + | 1 1 S 0 | η c (1 S ) = η c | 2983.9 ± 0.5 | η b (1 S ) = η b | 9399.0 ± 2.3 |
0 - + | 2 1 S 0 | η c (2 S ) = η c ' | 3637.6 ± 1.2 | η b (2 S ) | |
2 - + | 1 1 D 2 | η c (1 D ) † | η b (1 D ) † | ||
1 −− | 1 3 S 1 | J / ψ (1 S ) = J / ψ | 3096.900 ± 0.006 | Υ (1 S ) = Υ | 9460.30 ± 0.26 |
1 −− | 2 3 S 1 | ψ (2 S ) = ψ (3686) | 3686.097 ± 0.025 | Υ (2 S ) | 10,023.26 ± 0.31 |
1 −− | 3 3 S 1 | Υ (3 S ) | 10,355.2 ± 0.5 | ||
1 −− | 4 3 S 1 | Υ (4 S ) = Υ (10580) | 10,579.4 ± 1.2 | ||
1 −− | 5 3 S 1 | Υ (5 S ) = Υ (10860) | 10,889.9 ± 3.2 | ||
1 −− | 6 3 S 1 | Υ (6 S ) = Υ (11020) | 10,992.9 ± 10 | ||
1 −− | 1 3 D 1 | ψ (3770) | 3773.13 ± 0.35 | ||
2 −− | 1 3 D 2 | ψ 2 (1 D ) = ψ 2 (3823) | 3822.2 ± 1.2 | Υ 2 (1 D ) | 10,163.7 ± 1.4 |
3 −− | 1 3 D 3 | ψ 3 (1 D ) † | Υ 3 (1 D ) † | ||
1 −− | ? ? ? ? | ψ (4260) = Y (4260) | 4230 ± 8 | ||
1 + - | 1 1 P 1 | h c (1 P ) = h c | 3525.38 ± 0.11 | h b (1 P ) = h b | 9899.3 ± 0.8 |
1 + - | 2 1 P 1 | h c (2 P ) † | h b (2 P ) | ||
0 ++ | 1 3 P 0 | χ c 0 (1 P ) = χ c 0 | 3414.71 ± 0.30 | χ b 0 (1 P ) = χ b 0 | 9859.44 ± 0.52 |
0 ++ | 2 3 P 0 | χ c 0 (2 P ) † | χ b 0 (2 P ) | 10,232.5 ± 0.6 | |
1 ++ | 1 3 P 1 | χ c 1 (1 P ) | 3510.67 ± 0.05 | χ b 1 (1 P ) | 9892.78 ± 0.40 |
1 ++ | 2 3 P 1 | χ c 1 (2 P ) † | χ b 1 (2 P ) | 10,255.46 ± 0.55 | |
1 ++ | 3 3 P 1 | χ b 1 (3 P ) | 10,512.1 ± 2.3 | ||
2 ++ | 1 3 P 2 | χ c 2 (1 P ) | 3556.17 ± 0.07 | χ b 2 (1 P ) | 9912.21 ± 0.40 |
2 ++ | 2 3 P 2 | χ c 2 (2 P ) | 3927.2 ± 2.6 | χ b 2 (2 P ) | 10,268.65 ± 0.55 |
1 + + | ? ? ? 1 | χ c 1 (3872) = X (3872) | 3871.69 ± 0.17 |
Remarks:
literature
- Bogdan Povh et al: Particles and Cores. 6th edition. Springer, 2004, ISBN 3-540-21065-2 .
Individual evidence
- ↑ Particle Data Group: Naming scheme for hadrons (Revised in 2017). (PDF; 86 KB) Accessed February 17, 2018 (English).
- ^ LHCb collaboration: Determination of the X (3872) meson quantum numbers . In: Physical Review Letters . tape 110 , no. May 22 , 2013, doi : 10.1103 / PhysRevLett.110.222001 , arxiv : 1302.6269v1 .
- ↑ A new particle discovered by BaBar experiment. Istituto Nazionale di Fisica Nucleare , July 6, 2005, accessed March 6, 2010 .
- ↑ B. Aubert et al. (BaBar Collaboration): Observation of a broad structure in the π + π - J / ψ mass spectrum around 4.26 GeV / c 2 . In: Physical Review Letters . tape 95 , no. 14 , 2005, pp. 142001 , doi : 10.1103 / PhysRevLett.95.142001 , arxiv : hep-ex / 0506081 .
- ↑ M. Tanabashi et al . (Particle Data Group), 2018: cc̅ Mesons
- ↑ M. Tanabashi et al . (Particle Data Group), 2018: bb̅ Mesons