Construction of a Tabletop Michelson Interferometer

We start off with Maxwell's Equation in the Lorentz gauge:

Failed to parse (MathML with SVG or PNG fallback (recommended for modern browsers and accessibility tools): Invalid response ("Math extension cannot connect to Restbase.") from server "https://wikimedia.org/api/rest_v1/":): {\displaystyle \square^2A^\mu(\mathbf{r},t) = \square^2A^\mu (r)=\mu j^\mu (r)}

where we use the metric signature (+,+,+,-) and

${\displaystyle A^{\mu }=(\mathbf {A} ,{\frac {\Phi }{c}})}$ ,

${\displaystyle \square ^{2}=\partial _{\mu }\partial ^{\mu }=\nabla ^{2}-{\frac {1}{c^{2}}}{\frac {\partial ^{2}}{\partial t^{2}}}}$ 

${\displaystyle j^{\mu }=(\mathbf {j} ,c\rho ),\partial _{\mu }=(\mathbf {\nabla } ,{\frac {1}{c}}{\frac {\partial }{\partial t}})}$ 

Lorentz Gauge: ${\displaystyle \partial _{\mu }A^{\mu }=0\Rightarrow \mathbf {\nabla } \cdot \mathbf {A} -{\frac {1}{c^{2}}}{\frac {\partial \Phi }{\partial t}}=0}$ 

Introduce Green's function at${\displaystyle (\mathbf {r} ,t)=r\quad }$  from some impulse source at${\displaystyle r'=(\mathbf {r} ',t')\quad }$ 

${\displaystyle \square _{r}^{2}G(r,r')=\delta ^{4}(r-r')}$ 

Let ${\displaystyle {\tilde {G}}(q)={\frac {1}{(2\pi )^{2}}}\int d^{4}re^{-iq\cdot r}G(r,0)}$ 

Then ${\displaystyle G(r,0)={\frac {1}{(2\pi )^{2}}}\int d^{4}qe^{iq\cdot r}{\tilde {G}}(q)}$ 

Translational symmetry implies:

${\displaystyle G(r-r',0)=G(r,r')\quad }$ 

∴${\displaystyle G(r,r')={\frac {1}{(2\pi )^{2}}}\int d^{4}qe^{iq\cdot (r-r')}{\tilde {G}}(q)}$ 
${\displaystyle \square _{r}^{2}G(r,r')={\frac {1}{(2\pi )^{2}}}\int d^{4}qe^{iq\cdot (r-r')}{\tilde {G}}(q)}$ 

${\displaystyle \square _{r}^{2}G(r,r')={\frac {1}{(2\pi )^{2}}}\int d^{4}qe^{iq\cdot (r-r')}(-k^{2}+{\frac {\omega ^{2}}{c^{2}}})}$ , where ${\displaystyle q=(\mathbf {k} ,{\frac {\omega }{c}})\quad }$ 

But, ${\displaystyle \square _{r}^{2}G(r,r')=\delta ^{4}(r-r')={\frac {1}{(2\pi )^{4}}}\int d^{4}qe^{iq\cdot (r-r')}}$ 

∴${\displaystyle {\tilde {G}}(q)={\frac {(2\pi )^{2}}{(2\pi )^{4}}}{\frac {1}{-q^{2}}}={\frac {-1}{(2\pi )^{2}q^{2}}}}$ 

${\displaystyle G(r,r')={\frac {-1}{(2\pi )^{4}}}\int d^{4}qe^{iq\cdot (r-r')}{\frac {1}{(k+{\frac {\omega }{c}})(k-{\frac {\omega }{c}})}}}$ 

Chose the "retarded" solution, such that the function is zero unless t>t'

${\displaystyle G(r,r')={\frac {1}{(2\pi )^{4}}}\int d^{3}ke^{i\mathbf {k} \cdot (r-r')}\int d({\frac {\omega }{c}}){\frac {e^{-i\omega (t-t')}}{({\frac {\omega }{c}}-k)({\frac {\omega }{c}}+k)}}\Theta (t-t')}$ 

${\displaystyle ={\frac {1}{(2\pi )^{4}}}\int d^{3}ke^{i\mathbf {k} \cdot (r-r')}(2\pi i{\frac {e^{ick(t-t')}-e^{-ick(t-t')}}{2k}})\Theta }$ 

${\displaystyle ={\frac {-2\pi }{(2\pi )^{4}}}\int _{0}{\frac {k^{2}dk}{k}}\sin \left({ck(t-t')}\right)2\pi \int _{-1}^{1}dze^{ik|\mathbf {r} -\mathbf {r'} |z}\Theta }$ 

${\displaystyle ={\frac {-1}{(2\pi )^{2}}}\left({\frac {1}{|\mathbf {r} -\mathbf {r'|} }}\right)2\int _{0}dk\sin(ck(t-t'))\sin(k|\mathbf {r} -\mathbf {r'} |)\Theta }$ 

${\displaystyle ={\frac {1}{(2\pi )^{2}}}{\frac {2}{|\mathbf {r} -\mathbf {r} '|}}{\frac {2\pi }{4}}\left[\delta (|\mathbf {r} -\mathbf {r} '|+c(t-t'))-\delta (|\mathbf {r} -\mathbf {r} '|-c(t-t'))\right]\Theta }$ 

But the term ${\displaystyle \delta (|\mathbf {r} -\mathbf {r} '|+c(t-t'))\rightarrow 0\quad \forall \quad t>t'}$ 

∴${\displaystyle G(r,r')={\frac {-1}{4\pi }}\quad {\frac {\delta (|\mathbf {r} -\mathbf {r} '|-c(t-t'))}{|\mathbf {r} -\mathbf {r} '|}}}$ 

Now to get the ${\displaystyle G_{1}(r,r')\quad }$  in the half-space with z>0 with the boundary condition ${\displaystyle G_{1}\quad }$  at${\displaystyle r_{3}=z=0\quad }$  we take the difference:

${\displaystyle G_{1}(r,r')={\frac {-1}{4\pi }}\left({\frac {\delta (|\mathbf {r} -\mathbf {r} '|-c(t-t'))}{|\mathbf {r} -\mathbf {r} '|}}-{\frac {\delta (|\mathbf {r} -\mathbf {r} '+2z'{\hat {e_{3}}}|-c(t-t'))}{|\mathbf {r} -\mathbf {r} '+2z'{\hat {e_{3}}}|}}\right)}$ 

Now use Green's theorem:

Let ${\displaystyle F^{\mu }=A(r)\partial _{\mu }G_{1}(r,r')-G_{1}(r,r')\partial _{\mu }A(r)}$ 

${\displaystyle \int \partial _{\mu }F_{\mu }d^{4}r=\int cdt\int d^{3}r[\partial _{\mu }A\partial ^{\mu }G+A\partial _{\mu }\partial ^{\mu }G_{1}-\partial _{\mu }G\partial ^{\mu }A-G_{1}\partial _{\mu }\partial ^{\mu }A]}$ 

But ${\displaystyle \partial _{\mu }\partial ^{\mu }G_{1}(r,r')=\delta ^{4}(r-r')}$ 

${\displaystyle \partial _{\mu }\partial ^{\mu }A(r)=\mu j(r)}$ , let ${\displaystyle j(r)=0\quad }$ 

${\displaystyle \int \partial _{\mu }F_{\mu }d^{4}r=A(r')}$ 

Now invoke the divergence theorem on the half space ${\displaystyle z>0\quad }$ :

${\displaystyle A(r')=-\int d^{2}r\int cdt\left[A(r){\frac {\partial }{\partial z}}G_{1}(r,r')-G_{1}(r,r'){\frac {\partial }{\partial z}}A(r)\right]}$ , where the last term is zero by the condition of${\displaystyle G_{1}(z=0,r')=0\quad }$ 

${\displaystyle A(r')=-c\int dt\int d^{2}rA(r){\frac {\partial }{\partial z}}G_{1}(r,r')}$ 

To do the t integral, I need to bring out the z derivative. To do this, I first turn it into a z' derivative, using the relation:


${\displaystyle G_{1}(r,r')={\frac {-1}{4\pi }}\left({\frac {\delta (|\mathbf {r} -\mathbf {r} '|-c(t-t'))}{|\mathbf {r} -\mathbf {r} '|}}-{\frac {\delta (|\mathbf {r} -\mathbf {r} ''|-c(t-t'))}{|\mathbf {r} -\mathbf {r} ''|}}\right)}$ , where ${\displaystyle \mathbf {r} ''=\mathbf {r} '-2z'{\hat {e_{3}}}}$ 

${\displaystyle {\frac {\partial }{\partial z}}G_{1}(r,r')={\frac {-1}{4\pi }}\left({\frac {\partial }{\partial z}}\left({\frac {\delta (|\mathbf {r} -\mathbf {r} '|-c(t-t'))}{|\mathbf {r} -\mathbf {r} '|}}-{\frac {\delta (|\mathbf {r} -\mathbf {r} ''|-c(t-t'))}{|\mathbf {r} -\mathbf {r} ''|}}\right)\right)}$ 

∴ ${\displaystyle A(r')={\frac {-1}{4\pi }}{\frac {\partial }{\partial z'}}\int _{z=0}d^{2}r\left(2{\frac {A(\mathbf {r} ,t'-{\frac {|\mathbf {r} -\mathbf {r} '|}{c}})}{|\mathbf {r} -\mathbf {r} '|}}\right)}$ 

At ${\displaystyle z=0\quad }$ , ${\displaystyle |\mathbf {r} -\mathbf {r} '|={\sqrt {r^{2}+z'^{2}}}=S,dS={\frac {rdr}{\sqrt {r^{2}+z'^{2}}}}}$ 

If${\displaystyle A(\mathbf {r} ,t)\quad }$  is independent of position, as in a plane wave propagating along the z axis, then:

${\displaystyle A(r')={\frac {-\partial }{\partial z'}}\int _{z'}^{\infty }dSA\left(\mathbf {0} ,t-{\frac {S}{c}}\right)=A\left(\mathbf {\mathbf {0} } ,t'-{\frac {z'}{c}}\right)}$ 

This gives us uniform translation of waves at velocity c. More generally:

${\displaystyle A(r')={\frac {-1}{2\pi }}\int _{z=0}d^{2}r{\frac {\partial }{\partial z'}}\left({\frac {A\left(\mathbf {r} ,t'-{\frac {|\mathbf {r} -\mathbf {r} '|}{c}}\right)}{|\mathbf {r} -\mathbf {r} '|}}\right)}$ 

${\displaystyle ={\frac {-1}{2\pi }}\int _{z=0}d^{2}r\left({\frac {A\left(\mathbf {r} ,t'-{\frac {|\mathbf {r} -\mathbf {r} '|}{c}}\right)}{|\mathbf {r} -\mathbf {r} '|^{3}}}(-z')+{\frac {{\dot {A}}\left(\mathbf {r} ,t'-{\frac {|\mathbf {r} -\mathbf {r} '|}{c}}\right)}{|\mathbf {r} -\mathbf {r} '|c}}{\frac {-z'}{|\mathbf {r} -\mathbf {r} '|}}\right)}$ 

${\displaystyle A(r')={\frac {-1}{2\pi }}\int _{z=0}d^{2}r\left({\frac {A\left(\mathbf {r} ,t'-{\frac {|\mathbf {r} -\mathbf {r} '|}{c}}\right)}{|\mathbf {r} -\mathbf {r} '|^{3}}}(-z')+{\frac {1}{c}}{\frac {{\dot {A}}\left(\mathbf {r} ,t'-{\frac {|\mathbf {r} -\mathbf {r} '|}{c}}\right)}{|\mathbf {r} -\mathbf {r} '|^{2}}}(-z')\right)}$ 

In our case, we consider only those waves which drop off as ${\displaystyle {\frac {1}{r'}}\quad }$ , so:

${\displaystyle A(r')={\frac {1}{2\pi }}\int _{z=0}d^{2}r\left({\frac {1}{c}}{\frac {{\dot {A}}\left(\mathbf {r} ,t'-{\frac {|\mathbf {r} -\mathbf {r} '|}{c}}\right)}{|\mathbf {r} -\mathbf {r} '|^{2}}}(z')\right)}$ 

${\displaystyle A(r')={\frac {z'}{2\pi c}}\int _{z=0}d^{2}r\left({\frac {{\dot {A}}\left(\mathbf {r} ,t'-{\frac {|\mathbf {r} -\mathbf {r} '|}{c}}\right)}{|\mathbf {r} -\mathbf {r} '|^{2}}}\right)}$ 

In cylindrical coordinates, ${\displaystyle d^{2}r=rdrd\phi \quad }$ . Also, ${\displaystyle {\dot {A}}\left(\mathbf {r} ,t'-{\frac {|\mathbf {r} -\mathbf {r} '|}{c}}\right)={\dot {A}}(\mathbf {r} ,0)e^{-ik(t'c-|\mathbf {r} -\mathbf {r} '|)}}$ . So:

${\displaystyle A(r')={\frac {z'{\dot {A_{0}}}}{2\pi c}}\int _{z=0}rdrd\phi {\frac {e^{-ik(t'c-|\mathbf {r} -\mathbf {r} '|)}}{|\mathbf {r} -\mathbf {r} '|^{2}}}}$ 

Picture an opaque screen with a circular aperture of radius a.

LetFailed to parse (MathML with SVG or PNG fallback (recommended for modern browsers and accessibility tools): Invalid response ("Math extension cannot connect to Restbase.") from server "https://wikimedia.org/api/rest_v1/":): {\displaystyle \mathcal{J}(r')=\int_0^a rdr\int_0^{2\pi} d\phi \frac{e^{ik|\mathbf{r}-\mathbf{r}'|}}{|\mathbf{r}-\mathbf{r}'|}}

Then Failed to parse (MathML with SVG or PNG fallback (recommended for modern browsers and accessibility tools): Invalid response ("Math extension cannot connect to Restbase.") from server "https://wikimedia.org/api/rest_v1/":): {\displaystyle A(r')=\frac{z'\dot{A_0}}{2\pi c}e^{-ikct'}\mathcal{J}(r')}

Failed to parse (MathML with SVG or PNG fallback (recommended for modern browsers and accessibility tools): Invalid response ("Math extension cannot connect to Restbase.") from server "https://wikimedia.org/api/rest_v1/":): {\displaystyle |\mathbf{r}-\mathbf{r}'|=\sqrt{(x-x')^2+(y-y')^2+z'^2}=\sqrt{r^2+r'^2+2r\rho^2\cos\phi}}

Failed to parse (MathML with SVG or PNG fallback (recommended for modern browsers and accessibility tools): Invalid response ("Math extension cannot connect to Restbase.") from server "https://wikimedia.org/api/rest_v1/":): {\displaystyle =r'-\frac{2r\rho'\cos\phi}{2r'}, \frac{\rho'}{r'}=\sin\theta'}

Failed to parse (MathML with SVG or PNG fallback (recommended for modern browsers and accessibility tools): Invalid response ("Math extension cannot connect to Restbase.") from server "https://wikimedia.org/api/rest_v1/":): {\displaystyle \frac{1}{|\mathbf{r}-\mathbf{r}'|^2} \approx \frac{1}{r'^2}\left(1+\frac{2r\sin\theta'\cos\phi}{r'}\right)}