Position Operator in Momentum Space and Uncertainty

Position Operator in Momentum Space and the Uncertainty Relation

In 1D momentum space the position and momentum operators act very differently:

  • Momentum operator:

        \[ (p\psi)(p) = p\,\psi(p) \]

  • Position operator:

        \[ (x\psi)(p) = i\hbar \,\frac{d\psi}{dp}(p) \]

That “multiply vs. differentiate” mismatch is exactly what produces uncertainty:
a state sharply localized in p must vary slowly with p,
while a state sharply localized in x requires \psi(p) to vary rapidly with p.
These requirements are incompatible in the extreme, and the quantitative statement is the
Heisenberg uncertainty relation.

1. The Commutator in Momentum Space

Let \psi(p) be square-integrable and vanish at |p|\to\infty. Using the operator forms above:

    \[ [x,p]\psi = x(p\psi)-p(x\psi) = i\hbar \frac{d}{dp}\big(p\psi\big) - p\Big(i\hbar \frac{d\psi}{dp}\Big) = i\hbar\,\psi. \]

So as operators,

    \[ [x,p]=i\hbar\mathbf 1. \]

2. Derivation via Cauchy–Schwarz Inequality

Define centered operators

    \[ A := x - \langle x\rangle,\qquad B := p - \langle p\rangle, \]

and the vectors

    \[ \phi := A\psi, \qquad \chi := B\psi. \]

Then

    \[ \Delta x^2 = \lVert \phi\rVert^2 = \langle \phi|\phi\rangle,\qquad \Delta p^2 = \lVert \chi\rVert^2 = \langle \chi|\chi\rangle. \]

By Cauchy–Schwarz:

    \[ \Delta x^2\,\Delta p^2 \ge |\langle \phi|\chi\rangle|^2 = |\langle \psi|A B|\psi\rangle|^2. \]

Split AB into commutator and anticommutator:

    \[ AB=\tfrac12\{A,B\} + \tfrac12[A,B]. \]

Taking expectation values and using [A,B]=[x,p]=i\hbar:

    \[ \langle AB\rangle = \tfrac12\langle \{A,B\}\rangle + \tfrac{i\hbar}{2}. \]

Hence

    \[ |\langle AB\rangle|^2 = \Big|\tfrac12\langle \{A,B\}\rangle + \tfrac{i\hbar}{2}\Big|^2 \ge \Big|\tfrac{i\hbar}{2}\Big|^2 = \frac{\hbar^2}{4}. \]

Therefore,

    \[ \boxed{\Delta x\,\Delta p \ge \frac{\hbar}{2}}. \]

This is the Heisenberg uncertainty relation.

(Equivalently, one can quote the general Robertson–Schrödinger inequality
\Delta A\,\Delta B \ge \tfrac12 |\langle[A,B]\rangle|, and insert [x,p]=i\hbar.)

3. Why the Derivative Form Introduces Uncertainty

Since x acts as i\hbar\,\partial/\partial p, making \psi(p) very narrow around some p_0
forces \partial\psi/\partial p to be large in magnitude (sharp changes near the edges),
which inflates \Delta x. Conversely, making \psi(p) very smooth (small derivative) spreads
it out in p, increasing \Delta p. The non-commutativity [x,p]=i\hbar is the precise
algebraic statement of this trade-off.

4. State that Saturates the Bound

Equality holds when (A - i\lambda B)\psi=0 for real \lambda. In p-space:

    \[ \big(i\hbar \tfrac{d}{dp} - \langle x\rangle\big)\psi(p) = i\lambda\,(p-\langle p\rangle)\psi(p). \]

Solving gives a Gaussian

    \[ \psi(p) \propto \exp\!\Big[-\frac{(p-\langle p\rangle)^2}{2\sigma_p^2} + i\,\frac{\langle x\rangle}{\hbar}\,p\Big], \]

with \Delta p=\sigma_p and \Delta x=\hbar/(2\sigma_p), so \Delta x\,\Delta p=\hbar/2.

Summary

In momentum representation, the position operator being a derivative operator guarantees
non-commutation with the momentum operator. By applying the Cauchy–Schwarz inequality
to the commutator, we derive the uncertainty relation:

    \[ \Delta x\,\Delta p \ge \frac{\hbar}{2}. \]

This expresses the fundamental trade-off between sharpness in position and sharpness in momentum.