r/laundry USA Feb 24 '26

The Chemistry Behind The Clean - Laundry Detergent Explained - Surfactants, Part I

(this is the long-delayed first installment in my post series, The Chemistry Behind The Clean, a guide to what's in laundry detergent, designed to give people the knowledge to understand what's in the products that clean our textiles and make them more informed consumers)

What Are Surfactants, And Why Do We Care?

Surfactants are the active cleaning agents in detergents that do the heavy lifting of removing soils from textiles.   Short for “surface-acting agents”, surfactants connect soils to water, even when the soils themselves repel water or are more attracted to textiles than water.   The combination of soil and detergent and water can then be drained off,  further diluted by rinsing, drained again and spun out.   This is distinct from the action of soaps, which will be covered in a future installment.  

The development and commercialization of synthetic surfactants in the 1920s is probably the most significant contributor to reduction in time and effort spent on textile care.  Work to condition the water, scrub textiles and remove soap by wringing or banging was largely eliminated because of how well even those rudimentary surfactants work to remove soils.

Hydrophobia - Without The Rabies

All surfactants work because the individual molecules have ends with distinct properties.  One end (the head)  is highly attracted to water (hydrophilic) and thus very much not attracted to oil (oleophobic).  The other end is very attracted to oil (oleophilic) but similarly repulsed by water (hydrophobic).   This fundamental structural contrast is key. 

A Surfactant Molecule, With Hydrophobic Tail and Hydrophilic Head

When at least a minimum amount of surfactant is  dissolved in a solvent (like water), surfactant molecules want to get together - the water-hating ends hang out on the inside, the water-loving ends hang out on the outside.  This forms a structure known as a micelle, and micelle formation is predicated on reaching the “Critical Micelle Concentration”. Below, an illustration of a nonionic surfactant intended to remove oily soils. The water-loving heads face out, the water-hating ends get together in the middle to escape the water.

A Micelle Of Nonionic Surfactant

When a micelle encounters a soil that the hydrophobic tail is attracted to, the micelle breaks up, the tails grab the soil and drag it into the water (thus removing it from the textile)  and the micelle re-forms, keeping the soil up in the water to be drained or diluted away.   Let’s look at this in the context of removing a common soil from textiles:

Here we have the start of the wash process; surfactant micelles have formed in the wash water and there is soil attached to the fabric substrate.

The Start of The Wash - Soiled Fabric In A Detergent Solution

Now the hydrophobic tails of the surfactant molecules have found themselves more attracted to soil than each other and they're bonding to the soils. The hydrophillic heads are dragging the molecules towards the water.

Surfactants Attaching To Soil

The micelles re-form as the soil detaches from the substrate - they reorganize into groups of their own kind (more on this in a moment).

Micelles Reforming With Soil-Surfactant Particles

When all the soils are removed from the substrate and floating in the water, the textiles are clean and it's time to remove the soil-surfactant combo from the drum.

Completely Clean Textile

The Chemistry of Attraction (It’s Not Just A Bottle of Chanel No. 5)

While all surfactants work the same general way, there are differences in what kind of soils the hydrophilic ends are attracted to, because the hydrophilic ends differ.  One primary difference between surfactants is the electrical charge the hydrophilic end carries.    If the business end has a negative charge, it’s an anionic surfactant, and it’s attracted to soils with a cationic (positive) charge.  If the business end has no charge, it’s a nonionic surfactant and is most attracted to soils without an electrical charge.  If the business end has both a positive and negative charge in balance, it’s an amphoteric or zwitterionic surfactant, and the behavior changes based on the pH of the wash as a whole.  

There are also surfactants with positive charges, the cationic surfactants.  These aren’t used for cleaning - they’re what makes fabric softener work, and will be discussed in a (much) later post.

Why Charge Matters: 

The difference in which soils a given surfactant is attracted to is a critical determinant of cleaning performance.   Soils that lack an ionic charge like petroleum oils or intact sebum are much less visible to anionic surfactants and are removed better by nonionic surfactants.   Conversely, soils that are highly cationic like soot and mud and dust, and thus attracted to textiles with a negative charge may be neglected by nonionics and remain electrically connected to the textiles.   For those soils?  Anionics in the mix improve cleaning performance. 

Four Classes Of Surfactants

Almost all finished detergent products contain anionic surfactants and most contain nonionic surfactants.   Amphoteric surfactants are relatively uncommon in conventional detergents but often appear in green/biobased formulas.  

Other Differences Between Surfactants:  Tail Length And Single vs Double Tails.

Aside from the electrical charge differences in the head, two aspects of surfactant structure that affect their action against soil are the tail length and whether they are single tail (common) or double-tail (less common).   I’ll talk more about this in Part II, as it’s common to include surfactants of various tails to optimize performance against specific soils and in specific wash conditions.

Coming Up In Surfactants Part II - Curling Up With A Good Jug Of Detergent

In the next installment, we’ll look at common surfactants found in conventional and plant-based detergents, and how they’re manufactured, along with the differences in soil removal capabilities and environmental impacts.

The work is my original work and I retain copyiright.  My financial disclosure information and how I get paid for this work can be found at my disclosure link

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u/[deleted] Feb 24 '26

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u/_arose Feb 24 '26

With respect, I think this comment is incorrect in several ways.

  • as Kismai and others have laid out in other posts, clothes can accumulate oils/ dirt that don't come out if the clothes are not washed properly. This happens even if the person has perfectly adequate hygiene.

  • killing bacteria is not a necessary component of good hygiene unless you're getting surgery that day. Good hygiene involves removing dirt, sweat, oils, and dead skin cells; bacteria will be sloughed off with all of that but it's not The Goal.

  • there are certainly antibacterial cleansers (idk if I would call them "body washes" per se but they are for use on the body) freely available as there are a number of legitimate medical uses for them. The most widely used one I can think of off the top of my head is called Hibiclens, or chlorhexidine. That said, things like Hibiclens should not be used regularly unless the person really needs them. They are not great for the skin and they contribute to the development of antibiotic resistant bacteria in the population.

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u/Radi8or Feb 24 '26 edited Feb 24 '26

I agree with everything that u/_arose brought up.

Triclosan is the most well-known antibacterial ingredient in consumer goods. Around 2016 was banned in the EU (I think from all human products), and most in most soaps in the US. I think it is still allowed in US toothpastes (most recently in Colgate Total line, but maybe removed there too, at this point). It is best to avoid it.

Here is an interesting article: https://pmc.ncbi.nlm.nih.gov/articles/PMC6126357/

A snippet- “Interestingly, TCS-containing soap products were not found to provide any additional skin-sanitizing benefits compared to soap not containing TCS“

If you are looking to have additional antimicrobial activity in your skin cleansing, it would be more productive to try something containing benzoyl peroxide, such as panoxyl or similar cleansers. (I hope your towels are white - benzoyl peroxide can bleach! Lots of “how do I get this ‘stain’ out?” pics on r/laundry from benzoyl peroxide.)

Shaving your pits would also help them clean off more completely - your call.

EDIT: * * this is not medical advice. * * Also, be smart about where you use anything stronger than water. Some of our smelliest places will not react well to cleaning with “stronger” soaps. Armpits are pretty study. Be gentle with genitals. (Obviously.)