Difference between revisions of "Nuclear Decay Forest NucPhys I"

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:<math>\Delta I =\left \{  {0 \;\;\;\; I_i = I_f =0 \atop 1 \;\;\;\; I_{i(f)} =1 and I_{f(i)}=0} \right .</math>
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:<math>\Delta I =\left \{  {0 \;\;\;\;\;\;\; I_i = I_f =0 \atop 1 \;\;\;\; I_{i(f)} =1 \mbox{and} I_{f(i)}=0} \right .</math>
  
 
=== Decay rate===
 
=== Decay rate===

Revision as of 18:51, 26 April 2009

Alpha Decay

The spontaneous emission of an alpha particle[math]({4\atop 2 }He_{2})[/math] is the result of a natural decay process which can be described as the tunneling of energy ( in the form of the alpha particle) through the coulomb barrier. In other words, if a collection of nucleons within a nucleus finds itself sufficiently close to the nuclear force potential well limit, then a coulomb repulsion force can begin to dominant and facilitate the tunneling of this collection of nucleons ( an alpha particle) through the confining potential well.


The decay process can be represented by the following reaction notation

[math]{A \atop Z }X_{N} \rightarrow {A-4 \atop Z-2 }Y_{N-2} + \alpha[/math]

Q-value

The "Q-value" represents the net mass energy released in a nuclear reaction.

In the above example the Q value is calculated :

[math]E_i = E_f[/math]
[math]m_Xc^2 +T_X = m_Yc^2 + T_Y + m_{\alpha}c^2 + T_{\alpha}[/math]
[math]T_X = 0[/math] : assume nucleus is initially at rest
[math]Q \equiv m_Xc^2 -m_Yc^2 - m_{\alpha}c^2 = T_Y + T_{\alpha}[/math]

A positive Q value (Q>0) identifies a reaction as exothermic (exoergonic) which means that energy is given off and that the reaction is spontaneous

A negative Q value (Q<0) identifies the reaction as endothermic (endoergonic) which means that energy is required to for the reaction to take place.

Example

[math]{232 \atop 92 }U_{140} \rightarrow {228 \atop 90 }Th_{138} + \alpha[/math]
[math]Q = (232.0371463 - 228.0287313 - 4.002603 )uc^2 \frac{931.502 MeV}{uc^2} = 5.414 MeV[/math]


The positive Q value (Q>0) identifies the reaction as exothermic (exoergonic) which means that energy is given off and that the reaction is spontaneous

A negative Q value (Q<0) identifies the reaction as endothermic (endoergonic) which means that energy is required to for the reaction to take place.

Kinetic energy of alpha

Since the original nucleus was at rest, the final nuclei will have the same momentum in opposite directions in order to conserve momentum.

[math]T_{Y} = \frac{p^2_{Y}}{2m_Y}= \frac{p^2_{\alpha}}{2m_Y} = T_{\alpha} \frac{m_{\alpha}}{m_Y}[/math]
[math]Q = = T_Y + T_{\alpha} = T_{\alpha} \left ( \frac{m_{\alpha}}{m_Y} + 1\right )[/math]
[math]=T_{\alpha} \left ( \frac{4}{A-4} + 1\right ) = T_{\alpha} \left ( \frac{A}{A-4} \right )[/math]
[math] \Rightarrow T_{\alpha} = Q \left (1- \frac{4}{A} \right )[/math]

Example

[math]{232 \atop 92 }U_{140} \rightarrow {228 \atop 90 }Th_{138} + \alpha[/math]
[math] T_{\alpha} = Q \left (1- \frac{4}{A} \right )= 5.414 MeV \left (1- \frac{4}{228} \right ) = 5.32 MeV[/math]
Notice
The alpha particle caries away most of the kinetic energy.


The nuclear fragment (Y) does have a non-negligible amount of energy which can be sufficient to escape the material it is embedded in if it is on the order of a few microns from the materials surface. Heavy nuclei loose energy quickly when traveling through material.

Kinetic energy of alpha

Geiger-Nuttal Law

In 1911 Geiger and Nuttal noticed that the decay half life ([math]T_{1/2})[/math] of nuclei that emmitt alpha particles was related to the disentegration energy [math](Q)[/math].

[math]\log_{10}(T_{1/2}) = a + \frac{b}{\sqrt{Q}}[/math]

It works best for Nuclei with Even [math]Z[/math] and Even[math] N[/math]. The trend is still there for Even-Odd, Odd-Even, and Odd-odd nuclei but not as pronounced.

cluster decays

The Gieger-Nuttal Law has been extended to describe the decay of Large A (even-even and odd A) nuclei into clusters in which Silicon or Carbon are one of the clusters.

http://prola.aps.org/pdf/PRC/v70/i3/e034304

Theory of alpha emission

Barrier problem

Decay half life

The disintegration constant for \alpha emission may be expressed as

[math]\lambda = f P[/math]

where

f = number of times the alpha particle tries to escape the well by interacting with the barrier P = probability that the alpha particle escapes when it hits the barrier

the half life [math](t_{1/2})[/math] is then proportional to [math]\lambda[/math].

Example

Curium

Gamma Decay

Beta Decay

Types of decay

negative beta decay
[math]n \rightarrow p + e^-[/math]
positive beta decay
[math]p \rightarrow n + e^+[/math]
electron capture
[math]p+e^- \rightarrow n [/math]

negative beta decay

[math]{A \atop Z }X_{N} \rightarrow {A \atop Z+1 }Y_{N-1} + \beta^- + \bar{\nu}[/math]

[math]Q_{\beta^-} = \left [ m_N \left ({A \atop Z }X \right)-m_N\left({A \atop Z+1 }Y\right) -m_e \right ]c^2[/math]

let
[math]m\left({A \atop Z }X\right)c^2 \equiv \mbox{Atomic mass} = m_N\left({A \atop Z }X\right)c^2 + Zm_ec^2 - \sum_i^Z B_i [/math]
where
[math]B_i[/math] = ith elctron binding energy

then

[math]Q_{\beta^-} = m\left({A \atop Z }X\right)c^2 -Zm_ec^2 + \sum_i^Z B_i - m\left({A \atop Z+1 }Y\right)c^2 -(Z+1)m_ec^2 + \sum_i^{(Z+1)}B_i[/math]

positive beta decay

electron capture

Conservation rules

baryon number is conserved

[math]B = \frac{n_q - n_{\overline{q}}}{3} [/math]

where

[math]n_q \ [/math] is the number of constituent quarks, and
[math]n_{\overline{q}}[/math] is the number of constituent antiquarks.

beta decay just changes p to n or n to p so the number of quarks dont change just the flavor (isospin).

Up and down quarks each have isospin [math]\vec{I} = \vec{\frac{1}{2}}[/math], and isospin z-components

[math]I_z =\left \{ {\frac{1}{2} \;\;\;\; \mbox{up quark} \atop \frac{-1}{2} \;\;\;\; \mbox{down quark}} \right .[/math]

All other quarks have I = 0. In general

[math]I_z=\frac{1}{2}(n_u-n_d)[/math]

Lepton number is conserved

[math]L \equiv n_{\ell} - n_{\overline{\ell}}[/math]

so all leptons have assigned a value of +1, antileptons −1, and non-leptonic particles 0.

[math]\begin{matrix} & n & \rightarrow & p & + & e^{-} & + & {\overline{\nu}}_e \\ L: & 0 & = & 0 & + & 1 & - & 1 \end{matrix}[/math]

Angular momentum

Consider first that the net angular momentum is zero (only consider spins)

The \beta and neutrino are spin 1/2 objects, therefore their spins may be either parallel or anti-parallel.

Fermi decay

A [math]\beta[/math] decay in which the [math]\beta[/math] and neutrino spins are anti-parallel is known as Fermi decay.

This means

[math]\Delta I = 0 \Rightarrow[/math] no change in the spin of the nucleus
Examples
[math]{14 \atop 8 }O_{6} \rightarrow {14 \atop 7 }N^*_{7} + \beta^+ + \nu[/math]
[math]I_i = 0^+ \Rightarrow I_f = 0^+ \Rightarrow \Delta I = 0[/math]

also [math]\Delta \pi = 0 \Rightarrow[/math] parity is conserved: [math]\pi (Y_{\ell,m}) =(-1)^{\ell}[/math].

[math]{14 \atop 7 }N^*_{7}[/math] = excited state of N


Gamow-Teller decay

A [math]\beta[/math] decay in which the [math]\beta[/math] and neutrino spins are parallel is known as Gamow-Teller decay.

In terms of total angular momenum \vec{I} the transition is

[math]\vec{I_i} \rightarrow \vec{I_f} + \vec{1}[/math]


[math]\Delta I =\left \{ {0 \;\;\;\;\;\;\; I_i = I_f =0 \atop 1 \;\;\;\; I_{i(f)} =1 \mbox{and} I_{f(i)}=0} \right .[/math]

Decay rate

A calculation of the [math]\beta[/math] emmission decay rate is quite different from a calculation of [math]\alpha[/math] decay. In \alpha decay the nucleons of the original nucleus are used to form the fnial state [math]\alpha[/math] particle (He-4). In [math]\beta[/math] decay the [math]\beta[/math] and neutrino particles are the result of a nucleon transformation into its isospin complement [math](n \rightarrow p \mbox{or} p \rightarrow n)[/math]. Below is a list of the differences

  1. the [math]\beta[/math] and neutrino did not exist before the decay
  2. The [math]\beta[/math] and neutrino are relativistic (nuclear decay energy usually no enough to make heavy \alpha nucleus relativistic)
  3. The light decay products can have continuous energy distributions. (before assuming the [math]\alpha[/math] carried away most of the eergy was usually

a good approximation)

The [math]\beta[/math] decay rate calculation was developed by Fermi in 1934 and was based on Pauli's neutrino hypothesis. Fermi's Golden rule(see Forest_FermiGoldenRule_Notes) says that the transition rate [math]W[/math] is given by a transition matrix element (or "Amplitude") [math]M_{i,f}[/math] weighted by the phase space and Plank's constant [math]\hbar[/math] such that

[math]W = \frac{2 \pi}{\hbar} |M_{i,f}|^2 \times [/math](Phase Space)

The underlying assumption is that the transition is a weak purturbation of the system. This assumption appears to be true based on the very short time scale ([math]10^{-20}[/math] sec) it takes for the formation of quasi-stationary nuclear states compared with the time it takes for a [math]\beta[/math] decay ( half lives ranging from seconds to days)



Forest_NucPhys_I