Real and Imaginary Parts of Holomorphic Function are Harmonic
Theorem
Let $D \subseteq \C$ be an open subset of the set of complex numbers $\C$.
Let $f: D \to \C$ be a holomorphic complex function on $D$.
Let $u, v: \set {\tuple {x, y} \in \R^2: x + i y = z \in D} \to \R$ be the two real-valued functions defined as:
| \(\ds \map u {x, y}\) | \(=\) | \(\ds \map \Re {\map f {x + i y} }\) | ||||||||||||
| \(\ds \map v {x, y}\) | \(=\) | \(\ds \map \Im {\map f {x + i y} }\) |
Then $u$ and $v$ are harmonic functions.
Proof
By Cauchy-Riemann Equations, $u$ and $v$ satisfy:
| \(\text {(1)}: \quad\) | \(\ds \dfrac {\partial u} {\partial x}\) | \(=\) | \(\ds \dfrac {\partial v} {\partial y}\) | |||||||||||
| \(\text {(2)}: \quad\) | \(\ds \dfrac {\partial u} {\partial y}\) | \(=\) | \(\ds -\dfrac {\partial v} {\partial x}\) |
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Consider the partial derivative of $(1)$ with respect to $x$, and the partial derivative of $(2)$ with respect to $y$:
| \(\text {(3)}: \quad\) | \(\ds \dfrac {\partial^2 u} {\partial x^2}\) | \(=\) | \(\ds \dfrac {\partial^2 v} {\partial x \partial y}\) | |||||||||||
| \(\text {(4)}: \quad\) | \(\ds \dfrac {\partial^2 u} {\partial y^2}\) | \(=\) | \(\ds -\dfrac {\partial^2 v} {\partial y \partial x}\) |
- $\dfrac {\partial^2 v} {\partial x \partial y} = \dfrac {\partial^2 v} {\partial y \partial x}$
Thus $(3) + (4)$ yields:
- $\dfrac {\partial^2 u} {\partial x^2} + \dfrac {\partial^2 u} {\partial y^2} = 0$
So $u$ is a harmonic function by definition.
$\Box$
Now consider the partial derivative of $(1)$ with respect to $y$, and the partial derivative of $(2)$ with respect to $x$:
| \(\text {(5)}: \quad\) | \(\ds \dfrac {\partial^2 u} {\partial x \partial y}\) | \(=\) | \(\ds \dfrac {\partial^2 v} {\partial y^2}\) | |||||||||||
| \(\text {(6)}: \quad\) | \(\ds \dfrac {\partial^2 u} {\partial y \partial x}\) | \(=\) | \(\ds -\dfrac {\partial^2 v} {\partial x^2}\) |
By Clairaut's Theorem :
- $\dfrac {\partial^2 u} {\partial x \partial y} = \dfrac {\partial^2 u} {\partial y \partial x}$
Thus $(5) - (6)$ yields:
- $0 = \dfrac {\partial^2 v} {\partial y^2} + \dfrac {\partial^2 v} {\partial x^2}$
So $v$ is a harmonic function by definition.
$\blacksquare$
Sources
- 1964: Milton Abramowitz and Irene A. Stegun: Handbook of Mathematical Functions ... (previous) ... (next): $3$: Elementary Analytic Methods: $3.7$ Complex Numbers and Functions: Laplace's Equation: $3.7.32$