Understanding Emulsions II: Mayonnaise and The Science of Emulsification

Mayonnaise is a delicious example of the emulsifying power of egg yolks.

TL;DR: The Science of Mayonnaise

Mayonnaise not only tastes good but is a great example of the science of emulsions:

  • What is Mayonnaise? Mayonnaise is a thick oil-in-water emulsion (typically 3 parts oil to 1 part water), unlike thin vinaigrettes which are water-in-oil.
  • The Secret Emulsifier: Egg yolk isn’t just liquid—it contains Low-Density Lipoproteins (LDLs) and phospholipids that coat dispersed oil droplets to form stable spherical structures called micelles.
  • Salt Boosts Emulsification: Salt breaks down High-Density Lipoproteins (HDLs) in egg yolks, releasing extra proteins that improve stability.
  • Myth Busted: One egg yolk can emulsify gallons of oil (not just 1 cup), provided you continuously replenish the water phase (3:1 oil-to-water ratio).
  • Quick Technique: Immersion blenders generate a suction vortex that rapidly pulls oil into the yolk base, producing a stable mayonnaise in ~15 seconds.

Got a question you want answered in a hurry? Checkout the FAQ.

Making your own mayonnaise is something every home cook should be able to do. Yes, we’ve got commercial mayonnaise and it’s easy and tastes okay, most of the time.

But homemade mayonnaise taste different. Some would say better.

Certainly, if you are going to make mayonnaise-based sauces like aioli, remoulade, blue cheese and tartar sauce you probably need to ask yourself whether you want the underlying flavour to be store bought mayonnaise? Do I want to be putting expensive saffron in commercial mayonnaise? Probably not.

Bowls of mayonnaise-based sauces including garlic aioli, green remoulade, and spicy rouille
Mayonnaise based sauces include aioli, a cold garlic sauce often made with eggs as the emulsifiers, remoulade, a tangy herby mayonnaise often using pickles, and rouille, a spicy mayonnaise using saffron and sometimes cayenne pepper (Marianne Casamance, cyclonebill and Marion Deveaud via Wikimedia Commons).

So learning how to make mayonnaise is one path to becoming a better cook.

The other reason for learning how to make mayonnaise is that it is a continuation of the emulsion journey that we began with vinaigrettes.

When we make mayonnaise we get into the world of emulsifiers and we discover that the egg yolk is one of the most common and most powerful emulsifiers we have at our disposal in the kitchen.

So lets get to it, the science of mayonnaise.

Vinaigrette vs. Mayonnaise: Oil-in-Water vs. Water-in-Oil

In the first emulsions post I talked about how an emulsion had a continuous phase and a dispersed phase. In the kitchen these phases are usually oil and water.

So if you are making an emulsion in the kitchen you can make an emulsion that is either oil dispersed through water, so there are little droplets of oil in water, or water dispersed through oil, where little droplets of water are dispersed through oil.

A vinaigrette, because it is a simple mixture of oil and water, without much in the way of emulsifiers, is a water-in-oil emulsion, one part water dispersed through three parts oil.

A vinaigrette is thin because, when it comes to emulsions, the more dispersed phase that you get into the continuous phase the thicker the emulsion will be.

A vinaigrette is three parts of oil with only one part water dispersed through the oil, so it is thin.

Diagram comparing beakers of vinaigrette and mayonnaise. Vinaigrette contains a low density of blue particles, while mayonnaise is packed with dense orange particles. Explanatory text describes vinaigrette as water dispersed in oil, and mayonnaise as oil dispersed in water.
The difference between a vinaigrette and a mayonnaise is that in a vinaigrette one part of water is dispersed in three parts of oil making a thin emulsion. In mayonnaise the three parts of oil is dispersed in one part of water making a thick emulsion.

Oil-in-Water Emulsions

Roughly speaking, mayonnaise, just like a vinaigrette, is three parts oil and one part water, but, crucially, mayonnaise is an oil-in-water emulsion.

In mayonnaise there are three parts of oil dispersed through only one part water. This makes mayonnaise much thicker than a vinaigrette because a large part of the emulsion, by volume, is in the form of oil droplets dispersed through the water phase.

As we learned in Emulsions I keeping hydrophobic molecules dispersed in water is very energetically unfavourable and left to itself a mixture of oil and water will soon split and separate into two phases.

The fact that we can get so much oil dispersed in water when making mayonnaise is because of emulsifiers. It would be impossible to disperse all that oil through the water phase without using emulsifiers to stabilise the emulsion.

AttributeVinaigretteMayonnaise
Emulsion TypeWater-in-OilOil-in-Water
Ratio (Oil : Water)3 : 13 : 1
Viscosity / TextureThin, pourable liquidThick, spreadable spoonable emulsion
Primary EmulsifiersMinimal (mustard, herbs, or none)High (Egg yolk phospholipids & LDLs)
Stability LevelUnstable (separates quickly)Highly stable (due to micelle formation)
Comparison of oil-in-water and water-in-oil emulsions.

How Emulsifiers Work on a Molecular Level

The theory behind emulsifiers is pretty simple. An emulsifier is a molecule that has a charged part and a non-charged, or hydrophobic, part.

Emulsifiers work because they are able to interact with both water and with other hydrophobic molecules, like oil.

So at any interface between oil and water emulsifiers will arrange themselves with their hydrophobic bit in the oil and their polar bit in the water.

So, instead of oil and water butting up against each other at their interface they are now separated by the emulsifiers. It’s probably easiest understood diagrammatically below.

Chemical structure of an emulsifier molecule showing a red-circled polar head group and hydrophobic carbon tail
Polyethylene glycol monooleate is a common synthetic emulsifier. I chose it because it is relatively simple and clearly shows the polar head group, circled in red, and the long hydrophobic tail (basically a long chain of carbons). When in the presence of oil and water it will align itself along the interface with its hydrophobic tail interacting with the oil and the polar head group interacting with the water.

Reducing Surface Tension & Micelle Formation

Emulsifiers help us form emulsions in two ways.

Firstly, emulsifiers reduce the surface tension of water which makes it easier to mix the oil and water.

If you remember when we were looking at the vinaigrette we needed to put energy into the mixture to get the oil and water to mix. We needed to force the water into the oil, so to speak, breaking the bonds between water molecules and getting the water droplets surrounded by oil.

Emulsifiers make it easier to get the oil into the water.

Once the emulsion has formed emulsifiers also stabilise the emulsion by forming micelles.

Micelles are just spherical structures consisting of an outer shell of emulsifers surrounding a droplet of the dispersed phase, in mayonnaise this is oil for example.

The whole emulsion is more stable because the dispersed phase is no longer directly interacting with the continuous phase. The emulsifier is the go between, the Ned Flanders of the chemical world keeping everyone happy.

A less anthropomorphic explanation is that micelles have a lower free energy so the second law of thermodynamics drives their formation and lowers the free energy of the whole mixture (see Emulsions I if you want to learn more about free energy).

For our purposes you can think about it either way, we’re cooks not physicists.

Diagram of a micelle structure showing emulsifier molecules forming a protective ring around an oil droplet in water
Emulsifiers form micelles, in mayonnaise a droplet of oil is surrounded by emulsifiers that interact with the surrounding water via their polar head group. It works in reverse as well, where a droplet of water can be in the micelle surrounded by water.

The Role of Egg Yolks: Nature’s Ultimate Emulsifier

Mayonnaise, in it’s simplest form, is just oil and egg yolk, the yolk being the water phase. So where are the emulsifiers coming from?

Clearly it has to be the egg yolks and it turns out that egg yolks are a rich source of emulsifiers.

I talked about eggs in one of my first posts and in that post I said that the egg yolk is a bag of water with proteins in it. But that isn’t quite right. It is a bag of water with proteins in it but it also has a lot of little oil or fat droplets. And that should sound familiar.

Egg yolks are also an oil-in-water emulsion and they are stuffed with emulsifiers that stabilise the egg yolk emulsion. Luckily for us, these emulsifiers can also be used to stabilise other emulsions.

When we make mayonnaise with egg yolks we are hijacking these egg yolk emulsifiers and putting them to work emulsifying our sauce.

The Anatomy of Egg Yolks

Much like blood you can easily separate egg yolk into a thin, clear yellow solution (referred to as plasma) and solid particles.

The plasma mostly contains particles called low-density lipoproteins (LDLs) and if you squint at one of these particles you can see that they are actually kind of like a micelle.

In the human body LDLs are formed in the liver where they are packed with cholesterol and set to circulating through the blood system (so blood too is an emulsion).

As they circulate through the blood stream, cells that need cholesterol will take them up as needed via specialised receptors on their surface.

They are commonly known as the ‘bad’ cholesterol because excess amounts of circulating LDLs may lead to heart disease and stroke.

Because egg yolks are packed with LDLs it was thought that they could contribute to health problems but if you like eggs don’t worry as eating eggs doesn’t seem to increase circulating LDLs in humans, despite what what was thought twenty years ago (if you want more on this see here).

The solid particles in egg yolks contain another micelle like structure called HDL (high-density lipoprotein) that differ from an LDL by the amount of protein embedded in the micelle.

Diagram of a low-density lipoprotein (LDL) complex with phospholipids, free cholesterol, and apolipoprotein B-100
A low-density lipoprotein complex. A LDL has a single apolipoprotein B-100, among other proteins, embedded in a monolayer of phospholipids and free cholesterol. They form a micelle around the hydrophobic molecules, cholesterol esters and triglycerides.

Low-Density Lipoproteins (LDLs) & The Salt Trick

It appears that the LDL particles are the constituent of egg yolks that provide a lot of their emulsification power.

You may ask, as I did, how can an LDL emulsify anything, it’s already emulsifying its load of cholesterol?

But what is likely occurring is that the LDL particle breaks down at the oil/water interface liberating it’s load of hydrophobic molecules into the oil and the phospholipids and other emulsifying proteins of the micelle then emulsify the oil droplets.

How this exactly happens is still not really understood but if you want to go down a rabbit hole you can start here.

HDLs in their particle form aren’t as good emulsifiers as LDL but salt will dissolve HDLs freeing phospholipids and proteins that are good emulsifiers.

So adding some salt to your yolks is a good strategy when making mayonnaise or using egg yolks as emulsifiers.

Myth Busted: How Much Oil Can One Egg Yolk Actually Emulsify?

Even if we still don’t really understand the fine details of egg yolk emulsification we do know that they work and for centuries chefs have known from experience that egg yolks make great emulsifiers.

As Harold McGee points out a single egg can emulsify dozens of cups of oil.

A lot of cook books, internet sites and even Google’s Gemini AI say that a single egg yolk can only emulsify one cup of oil. But this is wrong. One egg yolk on its own will only emulsify one cup of oil (roughly speaking) but this is because the egg yolk is also the water phase and any more oil will overload the water phase.

If you keep adding oil and, importantly, water to maintain the ratio of oil to water (roughly about 3:1 oil to water) you’ll end up with gallons of mayonnaise from that one egg yolk (Harold McGee describes his experiments on this here).

When it comes to emulsification the egg yolk is a superstar.

How to Make Mayonnaise: Hand Whisking vs. Immersion Blender Method

OK, we’re 2000 words in and we still haven’t made a mayonnaise so lets start with an egg yolk, some neutral oil and a whisk.

What we want to do is start dispersing the oil in small droplets through the egg yolk and give the emulsifiers a chance to start forming micelles that will stabilise the sauce.

If you just dump all the oil into your egg yolk there is no way that you are going to break up the oil into small droplets and get it dispersed through the water phase. So you need to add oil to the mayonnaise slowly, a little bit at a time, beating vigorously as you go.

As more and more oil droplets are formed you’ll be able to start adding more oil each time as the existing droplets help disperse the new oil.

There is nothing wrong with a mayonnaise with just egg yolks, oil and a bit of salt but often you want to add more flavour. But when adding flavourings remember if you add a water based ingredient, vinegar or lemon juice for example, you will need more oil to maintain the thickness of your sauce.

When you’re happy with the consistency of your emulsion that’s it you’ve made mayonnaise.

But There’s An Easier Way

It’s worth making a mayonnaise this way, with a whisk, at least once, if only to experience the pain and gain an appreciation for our recent ancestors who didn’t have access to immersion blenders.

Judging by the amount of YouTube videos on the topic, it’s pretty well known now that you can make mayonnaise using an immersion blender and avoid all that whisking.

To do this you put your egg yolk, salt and flavourings in a tall jar and then pour your oil on top. Let the oil settle at the top for a little while and then put your immersion blender flat on the bottom of the jar and turn it on.

The immersion blender causes a vortex that gradually pulls the oil down into the water phase and the rapid mixing disperses the oil through the water phase.

I’ve put put one of the YouTube videos below and in this you can see it takes about fifteen seconds to make mayonnaise.

I imagine there are a lot of older chefs who weep while watching it but it also shows that there is no excuse for not trying to make your own mayonnaise at least once.

Taking Care of Your Emulsion

So that’s it really, a lot of science and fifteen seconds with an immersion blender and you have some mayonnaise.

The only thing left to talk about is how to care for your new emulsion.

Probably the most important thing to talk about is food safety, whenever you are dealing with raw egg products you need to take the possibility of salmonella infection seriously.

You can get pasteurised eggs, which is one option, but if you don’t have access to these you should use fresh, uncracked eggs and keep the mayonnaise refrigerated as much as possible.

I’m also conservative when it comes to storing homemade mayonnaise. It’s so easy to make and it’s just a cup of oil and one egg yolk so I feel pretty comfortable just throwing out leftover sauce.

If I just want a bit for a sandwich or something, well that’s where commercial mayonnaise is useful.

The other consideration is how to keep your mayonnaise emulsified. One simple error is putting a mayonnaise-based sauce on something that is too hot.

If you remember my frying an egg post, yolk proteins will start coagulating at around 60°\degreeC. Some of the most effective emulsifiers in egg yolk are proteins so if you put your mayonnaise into an environment that exceeds this temperature your going start losing emulsifiers and the oil will break free of it’s emulsified droplets and run free.

This can easily happen if you put some mayonnaise on something you have just taken off the heat so let things cool down before adding a mayonnaise based sauce or it will split.

Conclusion

That’s it for mayonnaise and the second step in out emulsions journey.

I’ve barely scratched the surface of mayonnaise, what oils to use, the different types of flavourings, how it behaves when frozen (not well), making mayonnaise with something other than egg yolks and lipid bilayers are all topics for a later day and you could write a whole post on the LDLs as bad cholesterol issue as well as the science behind commercial mayonnaise.

But it’s a fascinating subject and emulsification is such an important part of, not only food production, but also basic biology.

The movement of hydrophobic substances around the blood system and the importance of lipids and cholesterol to living beings are all massive subjects that rely on some of the same science as our humble mayonnaise.

Having said that I think we have covered enough for today so I’m going to go and have a sandwich.

Mayonnaise Science FAQ

Can one egg yolk really emulsify more than one cup of oil?

Yes. A single egg yolk contains enough emulsifying molecules (LDLs and phospholipids) to emulsify gallons of oil. The classic “1 cup per yolk” limit only exists because the yolk’s natural water content runs out. If you add small amounts of water or lemon juice as you whisk, one yolk can hold significantly more oil.

Why does adding salt to egg yolk help mayonnaise form?

Salt dissolves the solid High-Density Lipoprotein (HDL) complexes in egg yolks. This releases extra free proteins and phospholipids into the mixture, significantly enhancing the yolk’s emulsifying capabilities.

Why is mayonnaise thick if it is mostly oil?

Mayonnaise is an oil-in-water emulsion where up to 75%–80% of the volume consists of tiny oil droplets tightly packed inside a small water continuous phase. As the density of suspended droplets increases, they bump into each other, creating friction that gives mayonnaise its thick, spreadable texture.

Why did my immersion blender mayonnaise break?

Mayonnaise usually breaks if oil is pulled in too fast before an initial emulsified base forms, or if there is insufficient water for the volume of oil. Ensure your blender head is resting completely at the bottom over the egg yolk before starting, and pull up slowly only after the emulsion forms at the base.

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9 responses to “Understanding Emulsions II: Mayonnaise and The Science of Emulsification”

  1. Very well explained – this is and emulsions 1 are both linked in a PowerPoint presentation I’m doing about colloids, emulsions and suspensions As part of a GCSE chemistry module on the kinetic theory of matter / the particle model and behaviour thereof.

    1. Thanks, glad you enjoyed it. I’m really happy you find it useful for your chemistry module as well. When I was writing it I was thinking, who the hell is going to be interested in this apart from me? 🙂

  2. […] and aromatics (chimichurri, for example, goes great on steak). We’ve learned how to make a mayonnaise in 15 seconds, which can then be used to make tartar sauce, remoulade, cocktail sauce, aioli, […]

  3. wonderful explanation, worth to invest time

    1. Thanks! Glad you enjoyed it

  4. […] really need to know. Cream is just milk with a lot more fat globules and lot less water. Much like mayonnaise, where egg yolk proteins emulsify a large amount of fat in a relatively small amount of water, the […]

  5. […] A charged molecule doesn’t like interacting with hydrophobic molecules (as we saw in the emulsions post). This means many, if not most, organic molecules cannot spontaneously cross a lipid bilayer. They […]

  6. […] drops and it can no longer keep the oils in solution. The oils clump together and to form a cloudy emulsion. The same thing occurs in Ouzo, which is basically made the same way. This process, by increasing […]

  7. […] talk much more about emulsifiers in later posts, but for now it is enough to know that they make it easier to form an emulsion and will then act as […]

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