The Direction of Light: Exploring Polarisation and Hidden Stress
Most of us think of light in terms of brightness and colour.
A lamp can be bright or dim. Light can be red, green or blue. It can be reflected, refracted, absorbed or scattered.
But light has another property that we rarely notice in everyday life.
Light has direction.
Not simply the direction in which it is travelling, but the direction in which its electromagnetic field is oscillating.
This property is called polarisation, and it provides one of the most elegant demonstrations that light behaves as a transverse wave.
Even better, polarisation is something we can investigate with surprisingly simple equipment. Two polarising filters, a phone screen and a few pieces of transparent plastic can reveal an invisible world of patterns, stresses and colours.
It is one of those areas of science that deserves rather more attention than it normally receives at GCSE and A Level.
What Does It Mean for Light to Be Polarised?
Imagine shaking one end of a rope.
If you move your hand up and down, a wave travels along the rope while the rope itself vibrates vertically.
If instead you move your hand from side to side, the wave still travels along the rope, but the vibration is now horizontal.
The vibration takes place at right angles to the direction in which the wave travels.
That is the defining characteristic of a transverse wave.
Light behaves in a similar way.
The electromagnetic fields making up a light wave oscillate at right angles to the direction in which the light is travelling.
Ordinary light from the Sun, a lamp or many other sources contains waves vibrating in many different orientations.
We describe this light as unpolarised.
A polarising filter selects one preferred direction of vibration.
After passing through the filter, much of the remaining light is polarised.
That simple idea leads to some remarkable experiments.
Experiment 1: Two Polarising Filters
Perhaps the best introduction to polarisation requires nothing more than two polarising filters.
Hold one filter in front of a bright light source.
Some of the light is absorbed, so the view becomes slightly darker.
Now place a second polarising filter behind the first.
Initially, plenty of light may still pass through.
Slowly rotate one filter.
The transmitted light becomes progressively dimmer.
Continue rotating until the two filters are approximately 90 degrees apart.
The view can become almost completely dark.
This is known as using crossed polarisers.
Rotate the filter through another 90 degrees and the light returns.
It is an extraordinarily simple experiment.
Nothing has been switched off.
The lamp is still shining.
The filters are still transparent.
Yet their relative orientation determines whether the light gets through.
Malus's Law
The effect can be described quantitatively by Malus's Law:
I = I0 cos^2(theta)
where:
I = transmitted light intensity
I0 = maximum transmitted intensity
theta = angle between the polarisation directions of the two filters
When theta = 0 degrees:
cos^2(0) = 1
so the transmitted intensity is at its maximum.
When theta = 90 degrees:
cos^2(90) = 0
so ideally no light should pass through.
Real polarising filters are not perfect, so a small amount of light may remain visible.
This makes a good investigation for an A Level student.
A light sensor could be placed behind the filters and the intensity measured every 10 degrees as one filter is rotated.
The resulting graph should follow the cos^2(theta) relationship reasonably closely.
Suddenly an attractive visual demonstration has become a quantitative physics experiment.
Experiment 2: Your Phone Screen Is Already Helping
One of the most convenient sources of polarised light may already be sitting in your pocket.
Many LCD screens produce strongly polarised light.
Display a bright white image on a phone, tablet or computer monitor.
Now look at the screen through a polarising filter.
Rotate the filter.
At some orientations the display will look bright.
At others it may become much darker.
Depending on the construction of the screen, it may become almost black at a particular angle.
This is a wonderful demonstration because there is no obvious reason why rotating a transparent filter should make a glowing electronic screen apparently disappear.
It gives us an opportunity to discuss the physics hidden inside modern technology.
Why LCD Screens Need Polarisers
Liquid crystal displays depend on controlling the polarisation of light.
A simplified LCD contains polarising layers with liquid crystal material between them.
Electrical signals change the orientation of the liquid crystal molecules.
That changes how the polarisation of the light is modified as it passes through the display.
The second polarising layer then determines how much of that light reaches your eye.
Millions of tiny pixels can therefore be controlled independently.
Something as familiar as a laptop screen ultimately depends upon a property of light that many people have never consciously observed.
Experiment 3: Put Plastic Between Crossed Polarisers
Now things become much more colourful.
Set up two crossed polarising filters so that very little light passes through.
Then place a transparent plastic object between them.
Try:
a transparent ruler;
plastic cutlery;
clear packaging;
a CD case;
safety glasses;
transparent plastic sheet;
a plastic protractor;
pieces of adhesive tape;
moulded plastic components.
Instead of remaining dark, the plastic may suddenly produce brilliant bands of colour.
Blues, reds, greens, yellows and purples can appear.
Some objects show beautiful rainbow fringes.
Others reveal bright regions around corners, holes and moulded features.
These colours are not pigments inside the plastic.
They are being produced by interactions between polarised light and the material itself.
Seeing Stress That Is Normally Invisible
This technique is called photoelasticity.
Some transparent materials become optically anisotropic when they are under mechanical stress.
Put more simply, light travelling through stressed plastic can behave differently depending upon its direction of polarisation.
Different parts of the light wave travel through the material at slightly different speeds.
When the components of the light recombine, they interfere.
Because different wavelengths of visible light are affected differently, coloured patterns appear.
What makes this particularly interesting is that the colour pattern can correspond to stresses inside the object.
Areas that look perfectly normal to the naked eye can contain significant internal stress.
Suddenly the invisible becomes visible.
A Simple Engineering Investigation
Take several transparent plastic rulers from different manufacturers.
Place each one between crossed polarisers.
Do they show the same pattern?
Probably not.
Now gently bend one ruler.
Watch how the colours change.
The stress distribution inside the plastic has changed, and the polarised light reveals it.
Release the ruler and much of the pattern may return towards its original state.
This immediately connects classroom physics with engineering.
Engineers need to know where stresses concentrate.
Corners, holes, notches and sudden changes in shape can produce regions where stresses become much larger than expected.
Historically, transparent models viewed through polarised light provided an important way of investigating these stress concentrations.
Modern engineers have sophisticated computer modelling techniques such as finite element analysis, but photoelasticity remains an elegant demonstration of the underlying principles.
Try Adhesive Tape
One of my favourite versions of the experiment requires something even simpler.
Take a clear piece of plastic or glass and place several layers of transparent adhesive tape across it.
Allow some pieces to overlap.
Rotate some strips relative to others.
Place the result between crossed polarisers.
The overlapping layers can produce remarkably strong colours.
Different thicknesses and orientations create different optical effects.
It begins to look almost like stained glass.
Yet the picture has been produced through physics rather than coloured pigments.
This would make an excellent practical activity because students can deliberately design their own polarisation artwork while simultaneously investigating interference and optical anisotropy.
Science and art suddenly become connected.
Polarisation by Reflection
Polarising filters can also reveal something interesting about reflected light.
Look at reflections from:
water;
glass;
polished surfaces;
wet roads;
car windscreens.
Now view the reflection through a polarising filter and rotate it.
At certain angles the reflection becomes dramatically weaker.
Reflected light can be partially polarised.
This is particularly noticeable when light reflects from non-metallic surfaces such as water or glass.
The effect explains one of the most familiar applications of polarisation.
Why Polarised Sunglasses Work
Ordinary sunglasses simply reduce the amount of light entering the eye.
Polarised sunglasses do something more useful.
Reflections from roads, water and other horizontal surfaces tend to contain a strong horizontally polarised component.
The polarising material in the sunglasses is arranged to block much of that component.
The result is reduced glare.
This is why polarised sunglasses can be particularly effective for:
driving;
sailing;
fishing;
skiing;
photography;
activities around water.
For someone involved in sailing, the effect is particularly obvious.
Bright sunlight reflected from the surface of the water can produce intense glare. A good pair of polarised glasses can reduce much of that reflection and make it easier to see detail on and sometimes just below the surface.
Here a piece of wave physics becomes immediately useful.
A Quick Test for Polarised Sunglasses
There is a simple experiment you can perform.
Look at an LCD screen while wearing polarised sunglasses.
Tilt your head slowly sideways.
The brightness of the screen may change dramatically.
At approximately 90 degrees it may become very dark.
You are effectively rotating one polarising filter relative to another.
It is the same experiment we started with, except one polariser is inside your sunglasses and the other is part of your screen.
Polarisation in Photography
Photographers make extensive use of polarising filters.
A circular polarising filter fitted to the front of a camera lens can reduce unwanted reflections from:
water;
leaves;
glass;
painted surfaces;
wet rocks.
It can also deepen the appearance of a blue sky under suitable conditions and improve colour saturation in landscape photographs.
Unlike many digital photographic effects, this cannot always be reproduced convincingly afterwards in software.
If light reflected from the surface of a lake hides what is beneath the water, the camera sensor never receives the missing information.
Reducing the reflection before taking the photograph can therefore reveal detail that would otherwise be lost.
The effect changes as the filter rotates, so the photographer can adjust it while looking through the camera.
It is another good example of physics becoming a practical creative tool.
Polarisation and Microscopy
Polarised light is also important in microscopy.
Minerals, crystals and biological structures can interact with polarised light in distinctive ways.
A thin mineral section placed between crossed polarisers can produce spectacular colours.
Geologists can use those patterns to help identify minerals and investigate the internal structure of rocks.
Polarised light microscopy is also used to investigate:
crystals;
fibres;
polymers;
biological tissues;
industrial materials.
Once again, properties invisible under ordinary illumination become visible by controlling the direction of the light.
Polarisation in Astronomy
Even light that has travelled across enormous astronomical distances can carry polarisation information.
Astronomers can analyse the polarisation of light to investigate magnetic fields, scattering by dust and conditions around distant astronomical objects.
Polarisation measurements can contribute to studies of:
stars;
nebulae;
galaxies;
interstellar dust;
black hole environments;
the cosmic microwave background.
We started with two pieces of plastic held in front of a lamp.
The same underlying physics can help us investigate the Universe.
That is one of the things I find so appealing about experimental physics.
A relatively simple classroom observation can connect directly to some of the most sophisticated scientific measurements being made today.
Polarisation in Communications
Polarisation can also carry information.
Radio waves and microwaves are electromagnetic waves, just like visible light, although they have much longer wavelengths.
Their polarisation therefore matters too.
A transmitting aerial and receiving aerial generally work best when their orientations correspond appropriately.
Turn a receiving aerial through 90 degrees and the signal can decrease dramatically.
Satellite communications frequently make use of different polarisations to help separate signals.
The idea demonstrated with two optical polarising filters therefore extends far beyond visible light.
A Small Investigation for Students
A useful mini-project would be to collect a range of transparent household materials and investigate them systematically.
For each material, record:
What does it look like normally?
What does it look like between parallel polarisers?
What does it look like between crossed polarisers?
Does rotating the object change the pattern?
Does gently bending or squeezing it change the pattern?
Do different thicknesses produce different colours?
Can the observed patterns be related to the way the object was manufactured?
Students could photograph their results and create a gallery.
Possible objects might include:
rulers;
food packaging;
spectacle lenses;
plastic containers;
protractors;
disposable cutlery;
adhesive tape;
transparent 3D prints;
plastic clips.
You soon discover that apparently ordinary plastic objects contain an extraordinary amount of hidden optical information.
Going Further: Measuring the Light
For a more advanced experiment, use a light sensor.
Place:
light source -> polariser 1 -> polariser 2 -> light sensor
Keep the first polariser fixed.
Rotate the second polariser through angles from 0 to 180 degrees.
Measure the intensity at perhaps 10-degree intervals.
Plot:
light intensity against angle
Then compare the experimental results with:
I = I0 cos^2(theta)
Students can investigate whether the measured relationship agrees with Malus's Law.
Possible sources of error include:
background light;
inaccurate angle measurement;
imperfect polarising filters;
sensor alignment;
variations in the light source.
This turns a visually impressive demonstration into a proper experimental investigation involving measurements, graphs, mathematical modelling and evaluation.
Why Polarisation Matters Educationally
Students are frequently told that light is a transverse wave.
That statement can easily become another fact to memorise for an examination.
Polarisation changes that.
It provides experimental evidence.
Longitudinal waves cannot be polarised in the same way because their oscillations occur along the direction of travel.
The fact that light can be polarised therefore provides powerful evidence for its transverse nature.
There is an important educational distinction here.
Knowing that light is transverse is useful.
Seeing evidence that light is transverse is science.
And being able to design an experiment to investigate that evidence is even better.
Science Beyond the Syllabus
This is precisely why I enjoy exploring scientific ideas beyond the minimum required by an examination specification.
Specifications inevitably have limits.
There is only so much that can be taught in the available time.
But science itself does not stop at the edge of the syllabus.
Polarisation connects wave theory with engineering, photography, computing, materials science, astronomy, communications and everyday technology.
It can begin with equipment costing only a few pounds.
Yet it leads to some remarkably deep ideas.
That is exactly the sort of science I want students to experience.
Not simply:
"What do I need to remember for the examination?"
but:
"Why does that happen?"
"How could we test it?"
"What else could we discover?"
Conclusion: Light Has More to Tell Us
Light is far more complicated than simply something that allows us to see.
It has wavelength.
It has frequency.
It carries energy and momentum.
It reflects, refracts, diffracts and interferes.
And it can be polarised.
Two simple filters reveal that light has an orientation.
Add a piece of transparent plastic and suddenly invisible mechanical stresses can appear as brilliant bands of colour.
Look at reflected sunlight and we discover why polarised sunglasses work.
Turn to photography and we can control reflections before they reach the camera.
Look inside an LCD screen and polarisation becomes part of the technology we use every day.
Turn towards astronomy and the polarisation of light arriving from space can reveal information about objects millions or billions of kilometres away.
That is quite a journey from two small pieces of polarising plastic.
And it is an excellent reminder that some of the most interesting science begins when we look at something familiar and ask a slightly different question:
Light travels in a direction — but in which direction does it vibrate?


