Chemical-free
Treat water with physics, not additives — safer for people, fish and the environment.
Nanobubble Technology
Chemical-free nanobubble systems engineered in Bergen — for aquaculture, wastewater and industrial water.
Our Solutions
From recirculating fish farms to municipal plants, NanoMAR delivers oxygen and clarity where it matters.
Stable dissolved oxygen and healthier fish in recirculating systems.
Aerobic digestion supplied with oxygen, and lower sludge volumes.
Crystal-clear water with a fraction of the chlorine.
Process and cooling water kept clean, chemical-free.
The Science
Nanobubbles are gas bubbles smaller than 200 nanometres — thousands of times smaller than the bubbles a conventional diffuser makes, and invisible to the eye. They stay suspended for days to weeks, carry a strong negative surface charge, and present an enormous gas–liquid interface, so gas dissolves into the water instead of escaping to the air.
Why NanoMAR
Treat water with physics, not additives — safer for people, fish and the environment.
Near-complete gas transfer means oxygen dissolves instead of venting to air — lower energy operation.
Five models, from a portable laboratory unit to full industrial installations — configured to your flow.
Backed by water-purification research from the University of Bergen.
Industries
Stable dissolved oxygen and lower pathogen pressure for RAS, land-based and sea farms — nothing dosed into the water.
Oxygen-rich irrigation water that reaches the root zone and keeps drip lines clear of biofilm.
Aeration that keeps more of the gas you buy in the water, and flotation that takes fine solids out of it.
Produced-water treatment and flotation enhancement.
Hygienic process water and effluent management.
Froth flotation and tailings water clarification.
Restore oxygen and fight algae in standing water.
Biofilm control and oxygen in cooling towers, buffer tanks and stored water — nothing dosed.
Pre-treatment that keeps biofouling and organic load off reverse-osmosis membranes.
Blog
Nanobubbles do three jobs in water: transfer gas, lift particles, keep surfaces clean. How that plays out in RAS, wastewater, greenhouses and mining.
Read articleNanobubbles are generated by forcing gas into water through a membrane, a venturi or a ceramic element. Here is how each method behaves in practice.
Read articleTreating water with physics instead of additives is safer, cheaper over time, and better for the planet.
Read articleTell us about your process and we'll size a nanobubble system for it.
Talk to our teamA nanobubble is a gas-filled cavity in water smaller than 200 nanometres — thousands of times smaller than the bubbles a conventional diffuser makes. At that size a bubble stops behaving like a bubble. It does not rise and burst in seconds; it is effectively neutrally buoyant, so it stays suspended in the water for days or weeks, still carrying its gas.
Two properties follow, and between them they explain everything NanoMAR systems do. First, a vast combined gas–liquid interface means oxygen, air or ozone dissolves into the water almost completely instead of escaping to the atmosphere — the mechanism behind nanobubble aeration and gas infusion. Second, each bubble carries a strong negative surface charge, which lets it attach to and lift suspended solids, oils and the organic films that become biofilm.
That is why one platform covers duties that look unrelated: holding dissolved oxygen in a fish tank, clarifying a wastewater stream, keeping a membrane clean, floating fine particles in a flotation cell. It is the same physics each time, and since nothing is dosed in any of them, each one comes down to treating water without chemicals. The full explanation is on the nanobubble technology page.
These are the figures NanoMAR publishes. They are stated as minimums, and they are the only performance numbers we quote outside a specific installation — anything beyond them belongs in a sizing conversation about your water, not on a web page.
NanoMAR was founded in Bergen in 2023 by Prof. Thorolf Magnesen, whose water-purification research at the University of Bergen underpins the technology, and Behnood Sjåstad Fathi, a water-quality engineer with more than six years delivering aquaculture water-treatment projects internationally. The company exists because those two things had to meet: the physics was well understood, and the equipment that would put it to work on a real site was not.
Being based on the Norwegian coast is not incidental. Land-based aquaculture, RAS and the water-quality standards that come with them are the hardest environment this technology has to work in, and it is on our doorstep. Systems are specified for continuous duty because that is what a fish farm needs, and the same engineering carries over to wastewater, irrigation and the other industrial water treatment duties we build for.
We publish what we can substantiate and nothing else, whether it goes in a datasheet or in what we write about nanobubbles and water treatment. Where a figure is not on this site, it is because it has not been measured on water like yours yet — which is exactly what a pilot is for. More about the people behind NanoMAR.
Nanobubble treatment is almost always added to a process rather than replacing one. Four things decide how straightforward that is.
The unit is normally installed on a side stream of an existing pumped loop, so it can be isolated for service without stopping the process. That is also why a retrofit is usually a pipework question rather than a redesign.
Oxygen, air or ozone is a process choice, not a machine setting. It determines the supply you need on site, and it frequently costs more than the generator itself.
Capacity follows from the concentration you have to hold and the demand the process puts on it — not from tank volume. Warm water and peak load are the conditions to design against.
Systems are specified for continuous duty because that is what a fish farm or a treatment plant needs. Nothing is dosed, so there is no consumable to reorder beyond the gas.
It is a good fit in some situations and a poor one in others. These are the signals worth acting on.
A nanobubble is a gas-filled cavity in water smaller than 200 nanometres. At that size it stops behaving like a bubble: it does not rise and burst in seconds but stays effectively neutrally buoyant, suspended for days to weeks, and it carries a strong negative zeta potential that lets it attach to and lift contaminants. NanoMAR generators produce nanobubbles from oxygen, air or ozone, which is why one platform covers aeration, disinfection and flotation.
Yes — a NanoMAR system adds gas and nothing else, so no chemicals are dosed and there are no by-products or residues to handle downstream. The effect is physics rather than chemistry: an enormous combined gas–liquid interface drives near-complete gas transfer, and the negative surface charge on each bubble lifts suspended solids and oils out of the water. NanoMAR publishes 80 %+ suspended-matter removal and 50 %+ turbidity reduction on that basis. Where dosing is replaced, the chemical storage, handling and dosing equipment goes with it.
NanoMAR publishes no list prices and quotes each installation separately. The same model lands at very different totals depending on flow, which gas the process needs and how that gas is supplied on site, which separation stage suits the water, and how the unit ties into existing pipework — a published figure would be wrong for almost everyone reading it. The nanobubble generator price page sets out the variables that move a quotation, and a sizing conversation turns them into a number for your plant.
NanoMAR works across nine industries: aquaculture, agriculture, wastewater, oil and gas, food industry, mining, lakes and ponds, water towers and desalination. They share a water problem that comes down to gas transfer or surface behaviour — holding dissolved oxygen against a biological load, controlling biofilm and algae, or floating fine solids and oils out of a stream. Each industry page states the duty, the published figures that apply to it and which of the five systems fits.
You run a pilot — NanoMAR has no publishable customer references, so we offer a measurement rather than a testimonial. A pilot begins with a baseline on your own sampling points, typically dissolved oxygen, turbidity and suspended solids, before a NanoMAR unit runs on a defined side stream and the same points are measured the same way. The raw data is yours. The portable NanOxy S2 at 2–50 lpm and the NanOxy M Pro at 10–100 m³/h exist for exactly this, and how we prove a result describes the sequence.