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Delta baryon
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The Delta baryons (or baryons, also called Delta resonances) are a family of subatomic particle made of three or (u or d quarks), the same constituent quarks that make up the more familiar and .


Properties
Four closely related exist:  (constituent quarks: uuu),  (uud),  (udd), and  (ddd), which respectively carry an electric charge of , , , and .

The  baryons have a mass of about ; their third component of \; I_3 = \pm\tfrac{1}{2} ~\mathsf{ or }~ \pm\tfrac{3}{2}\;; and they are required to have an intrinsic spin of or higher (half-integer units). Ordinary (symbol N, meaning either a or ), by contrast, have a mass of about , and both intrinsic spin and of . The  (uud) and  (udd) particles are higher-mass spin-excitations of the (, uud) and (, udd), respectively. The and , however, have no direct nucleon analogues: For example, even though their charges are identical and their masses are similar, the  (ddd), is not closely related to the (, ).

The Delta states discussed here are only the lowest-mass quantum excitations of the proton and neutron. At higher spins, additional higher mass Delta states appear, all defined by having constant or (depending on charge), but with spin , , , ..., multiplied by . A complete listing of all properties of all these states can be found in Beringer et al. (2013).

There also exist Delta states with opposite charges, made up of the corresponding antiquarks.


Discovery
The states were established experimentally at the University of Chicago

and the Carnegie Institute of Technology synchro-cyclotron

in the mid-1950s using accelerated positive on hydrogen targets. The existence of the , with its unusual of , was a crucial clue in the development of the .


Formation and decay
The Delta states are created when a sufficiently energetic probe – such as a , , , or – impinges upon a proton or neutron, or possibly by the collision of a sufficiently energetic nucleon pair.

All of the Δ baryons with mass near quickly decay via the strong interaction into a ( or ) and a of appropriate charge. The relative probabilities of allowed final charge states are given by their respective isospin couplings. More rarely, the can decay into a and a and the can decay into a and a .


List
+Delta baryons
Delta

(1 232) + +20000
Delta(1 232) + +10000
Delta(1 232) 00000
Delta(1 232) −10000
a PDG reports the (Γ). Here the conversion \tau = \frac{\hbar}{\Gamma} is given instead.


Bibliography
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