Mandelstam variables

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In this diagram, two particles come in with momenta p1 and p2, they interact in some fashion, and then two particles with different momentum (p3 and p4) leave.
In this diagram, two particles come in with momenta p1 and p2, they interact in some fashion, and then two particles with different momentum (p3 and p4) leave.

In theoretical physics, the Mandelstam variables are numerical quantities that encode the energy, momentum, and angles of particles in a scattering process in a Lorentz-invariant fashion. They are used for scattering processes of two particles to two particles.

The Mandelstam variables s,t,u are then defined by

  • s=(p_1+p_2)^2=(p_3+p_4)^2 \,
  • t=(p_1-p_3)^2=(p_2-p_4)^2 \,
  • u=(p_1-p_4)^2=(p_2-p_3)^2 \,

Where p1 and p2 are the four-momentum of the incoming particles and p3 and p4 are the four-momentum of the outgoing particles.

s is also known as the square of the center-of-mass energy (invariant mass) and t is also known as the square of the momentum transfer.

Contents

[edit] Feynman diagrams

The letters s,t,u are also used in the terms s-channel, t-channel, u-channel. These channels represent different Feynman diagrams or different possible scattering events where the interaction involves the exchange of an intermediate particle whose squared four-momentum equals s,t,u, respectively.

s-channel t-channel u-channel

For example the s-channel corresponds to the particles 1,2 joining into an intermediate particle that eventually splits into 3,4: the s-channel is the only way that resonances and new unstable particles may be discovered provided their lifetimes are long enough that they are directly detectable. The t-channel represents the process in which the particle 1 emits the intermediate particle and becomes the final particle 3, while the particle 2 absorbs the intermediate particle and becomes 4. The u-channel is the t-channel with the role of the particles 3,4 interchanged.

The Mandelstam variables were first introduced by physicist Stanley Mandelstam in 1958.

[edit] Details

[edit] High-energy limit

In the relativistic limit mass can be neglected, so for example,

s=(p_1+p_2)^2=p_1^2+p_2^2+2 p_1 \cdot p_2 \approx 2 p_1 \cdot p_2 \,

because p_1^2 = m_1^2 and p_2^2 = m_2^2.

In summary,

s \approx \, 2 p_1 \cdot p_2 \approx\,  2 p_3 \cdot p_4 \,
t \approx \,  -2 p_1 \cdot p_3 \approx \,  -2 p_2 \cdot p_4 \,
u \approx \,  -2 p_1 \cdot p_4 \approx \,  -2 p_3 \cdot p_2 \,

[edit] Addition of

Note that

s+t+u = m_1^2 + m_2^2 + m_3^2 + m_4^2 \,

where mi is the mass of particle i.

[edit] Proof

To prove this, we need to use two facts:

  • The square of a particle's four momentum is the square of its mass,
p_i^2 = m_i^2  \quad \quad \quad \quad \quad \quad \quad \quad \quad \quad \quad (1) \,
  • And conservation of four-momentum,
p_1 + p_2 = p_3 + p_4 \,
p_1 = -p_2 + p_3 + p_4 \quad \quad \quad \quad \quad \quad \quad (2)\,

So, to begin,

s=(p_1+p_2)^2=p_1^2 + p_2^2 + 2p_1 \cdot p_2 \,
t=(p_1-p_3)^2=p_1^2 + p_3^2 - 2p_1 \cdot p_3 \,
u=(p_1-p_4)^2=p_1^2 + p_4^2 - 2p_1 \cdot p_4 \,

First, use (1) to re-write these,

s=m_1^2 + m_2^2 + 2p_1 \cdot p_2 \,
t=m_1^2 + m_3^2 - 2p_1 \cdot p_3 \,
u=m_1^2 + m_4^2 - 2p_1 \cdot p_4 \,

Then add them

s+t+u \, =3m_1^2 + m_2^2 + m_3^2 + m_4^2 + 2p_1 \cdot p_2 - 2p_1 \cdot p_3 - 2p_1 \cdot p_4 \,
=m_1^2 + m_2^2 + m_3^2 + m_4^2 + 2 \left( m_1^2 + p_1 \cdot p_2 - p_1 \cdot p_3 - p_1 \cdot p_4 \right) \,
=m_1^2 + m_2^2 + m_3^2 + m_4^2 + 2 \left( m_1^2 + p_1 \cdot \left( p_2 - p_3 - p_4 \right) \right) \,

Then use eq (2) to simplify further,

s+t+u \, =m_1^2 + m_2^2 + m_3^2 + m_4^2 + 2 \left( m_1^2 - p_1 \cdot p_1 \right) \,
=m_1^2 + m_2^2 + m_3^2 + m_4^2 + 2 \left( m_1^2 - m_1^2 \right) \,

So finally,

s+t+u = m_1^2 + m_2^2 + m_3^2 + m_4^2 \,

[edit] See also

[edit] References