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Is there formula that gives transparency of very thin film of given metal (tens of nanometers) to the visible light/light of given wavelength ? Which properties of metals are needed for the formula ?

I need to know which thickness of aluminium has 40% transparency to visible light. Thanks.

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You need the absorption and reflection coefficient, both depend on the wavelength of the incoming light. –  Alexander Jul 11 '12 at 20:48
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For a given wavelength, you need the complex permittivity or complex refractive index of aluminum and the refractive indices of the materials on either side of the aluminum film. (See refractiveindex.info). I'll post a more extensive explanation if I have time tomorrow and nobody else has yet. –  ptomato Jul 11 '12 at 22:38
    
possible duplicate of Make a semi transparent mirror with copper –  John Rennie Jul 12 '12 at 8:09
    
Related to this, which I answered a couple years ago: physics.stackexchange.com/questions/1094/… –  Colin K Sep 11 '13 at 0:05

3 Answers 3

All metals have a "skin depth". This is the depth to which electromagnetic radiation is able to penetrate into the metal. (A perfect conductor would have a skin depth of zero, a really lousy one would have a long skin depth.)

You're asking for the distance where 60% of the light has been absorbed. So we write: $$0.4 = e^{-x/\delta}$$ where $x$ is the thickness and $\delta$ is the skin depth. Solving, we find $x = 0.916\delta$.

And of course the skin depth depends on frequency. So let's google for the skin depth for aluminum and find various sites including: "optical properties of Al. That should get you started.

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I'll give you an example calculation for a wavelength of 532 nm. At refractiveindex.info, we find that the complex refractive index of aluminum at that wavelength is $n_1 = 0.938777 + 6.4195i$. Let's also assume that the light is incident normal to the surface, from air ($n_0=1$), and the aluminum layer is on a glass substrate ($n_2 = 1.5$).

(I'm naming the materials 0, 1, and 2 as in the picture below:)

Illustration of layers

At each interface, you have the Fresnel amplitude reflection coefficient:

$r_{jk} = \frac{n_j - n_k}{n_j + n_k}$

Note that this formula is simplified for normal incidence. Note also that $r_{kj} = -r_{jk}$ and the transmission coefficient $t_{jk} = 1 + r_{jk}$ (for perpendicular polarization only though... but doing the calculation for parallel polarization is much the same.)

During propagation through the aluminum, the field undergoes a phase delay and attenuation (which I will combine into the complex constant $\delta$, equal to $e^{ik_1d_1}$, where $d_1$ is the thickness of the aluminum layer and $k_1$ is the wave number in the aluminum layer, $k_1 = 2\pi n_1 / \lambda$.

So, to calculate the transmission $T=|E_\text{out}|^2/|E_\text{in}|^2$ we have several contributions that we need to sum, while preserving their phase. We have a contribution from the direct transmission,

$t_{01} \delta t_{12}$,

a contribution that is reflected back and forth through the aluminum once,

$t_{01} \delta r_{12} \delta r_{10} \delta t_{12}$,

a contribution that goes back and forth twice,

$t_{01} \delta r_{12} \delta r_{10} \delta r_{12} \delta r_{10} \delta t_{12}$,

and so on.

The sum of these contributions is

$\frac{E_\text{out}}{E_\text{in}} = t_{01} t_{12} \delta \sum_{k=0}^\infty (r_{12} \delta r_{10} \delta)^k = (1+r_{01})(1+r_{12})\delta \sum_{k=0}^\infty (-r_{01}r_{12}\delta^2)^k$,

and this is a geometric series, so it becomes

$\frac{E_\text{out}}{E_\text{in}} = \frac{(1+r_{01})(1+r_{12})\delta}{1 + r_{01}r_{12}\delta^2}$,

so

$T=\left|\frac{(1+r_{01})(1+r_{12})e^{ik_1d_1}}{1 + r_{01}r_{12}e^{2ik_1d_1}}\right|^2$.

Note that you may have to multiply $T$ by a factor of $n_2/n_0$, I'm doing this from memory and I can never remember whether you have to do that or not. (I hope I didn't make any other mistakes... ;-)

Here's a plot that I calculated for 532 nm:

Plot of transmission of aluminum layer as a function of layer thickness for normally incident 532 nm light

So this 40% occurs at around 3 nm thickness. You will be hard pressed to get an aluminum film of that thickness, as John Rennie points out. You will also find, as I have found to my detriment, that the optical properties of thin film aluminum are quite different from those of bulk aluminum, on which this calculation is based. Here are a couple references: (1) (2). The second one is open access. I'll pick a choice quote from the introduction of the first one:

It is well known that the optical properties of ultrathin metal films differ from those of bulk metal. This was most dramatically observed for the Al film.

So, picking an aluminum film with 40% transmission is not as easy as you might think.

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I think that this graph seems to be inacurate. I routinely observe thin Al metallization layers (~200nm-2000nm), and it's quite transparent in visible light (i.e. way higher than 10%). This was always puzzled me. –  BarsMonster Apr 3 '13 at 1:24

Have a look at my answer to Make a semi transparent mirror with copper

Although the question is about a different metal the principle is the same. Note however that 40% transmission requires a very thin film, and at those thicknesses the film has a tendancy to form islands of metal with voids between them. This causes some deviation from a simple exponential law.

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