Treatment Technologies

    Advanced Oxidation Process Companies

    AOP suppliers, UV/H₂O₂, ozone, Fenton, and catalytic oxidation for refractory organics, PFAS, and trace contaminants.

    110 providers

    This page is a good fit if you need:

    • Ion Exchange or Advanced Oxidation Processes (AOPs) capabilities
    • Suppliers with manufacturing sector experience
    • Providers operating in United Kingdom or Netherlands
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    PWNT logo

    PWNT

    United Kingdom

    PWNT, part of the Nijhuis Saur Industries (NSI) group, delivers cutting-edge solutions and consultancy services to meet the diverse needs of water utilities worldwide. Building on PWN’s rich legacy, PWNT leverages over 100 years of expertise to drive innovation in water treatment, with a strong focus on drinking water. Our pioneering technologies, including SIX® (Suspended Ion Exchange), ILCA® (Inline Coagulation and Adsorption), and CeraMac® (Ceramic Membrane Microfiltration), offer efficient, sustainable, and cost-effective treatment solutions for various water sources, ensuring the delivery of high-quality drinking water. Beyond technology development, PWNT offers comprehensive consultancy services in the study, design, optimization, and integration of water treatment technologies. PWNT is well-equipped to provide expert guidance on both emerging and traditional processes, such as pellet softening, advanced oxidation, GAC filtration, and coagulation. With a strong global presence, PWNT has successfully implemented large-scale projects and pilot installations across the world. Our innovative technologies are trusted by water utilities for their ability to address complex water quality challenges and adapt to diverse environmental conditions. Headquartered in the Netherlands, PWNT continues to foster strong partnerships with leading universities and global companies, committed to advancing sustainable water treatment technologies and helping utilities achieve their water quality goals.

    Designers
    Te-Tech Process Solutions logo

    Te-Tech Process Solutions

    United Kingdom

    Te-Tech Process Solutions is a provider of traditional products and advanced process technologies for water and wastewater treatment. Our products cater for a range of client needs from standardised products to bespoke applications designed to meet the exacting needs of the client’s process. Our in-house capability includes process, mechanical and electrical design, off-site manufacture and assembly, MCC and Control Panel Manufacture and System Integration. Our extended services include digital engineering, service and maintenance, operational support and real time control. Advanced technology and innovation are at the core of our business enabling us to provide high quality, efficient solutions to our clients. Our business is founded upon 4 key areas of expertise: WATER & WASTEWATER TREATMENT Te-Tech deliver established water and wastewater products and processes, including: te-cyc TM: Cyclic activated sludge ‘Macrofloc’ biological wastewater treatment te-saf TM: Packaged submerged aerated filters te-ion TM: Advanced oxidation technology for water and wastewater treatment te-mem TM: Advanced membrane filtration te-mbr TM: Package advanced membrane filtration te-sewpas TM: Airlift sludge removal plant te-uv TM: UV disinfection AUTOMATION CONTROL & TECHNOLOGY Our MCC and control panels are provided into multiple sectors including process and water, marine, oil & gas, energy, nuclear, defence and building services. Our capabilities include: MCCs LV Switchboards Local Control Panels Software System Integration DIGITAL ENGINEERING Te-Tech utilise cutting edge digital technologies to provide innovative solutions to our client’s problems. Our digital engineering services support the whole life cycle of our clients’ assets from conceptual design, through design for manufacture and assembly (DfMA), installation on site, final commissioning, operation and maintenance and decommissioning at the end of the asset’s life. Our in-house software capability provides clients with the visualisation tools to precisely view and interrogate designs in a virtual world to minimise clashes, delays or abortive activities and to ensure that the delivered assets are acceptable to operators in the real world. Our BIM capability ensures our products and technologies create assets that are fit for the future and our virtual reality technology allows our teams and clients to fully immerse themselves in the design, optimisation and operation of our solution prior to manufacturing. Our asset optimisation capability helps clients get the best performance out of their assets, by integrating real time control and using data driven insight we can ensure the sustainability and efficiency of asset performance across its lifecycle. Our virtual environment shows the equipment in operation, with liquids moving and plant turning on/off according to the actual system control philosophy. This is an invaluable tool for HAZOPS, ALM and remote training of operators before the plant is constructed – reducing risk and time on site OFF-SITE MANUFACTURING & ASSEMBLY Te-Tech’s off-site manufacture and assembly capability provides standard products and engineered solutions to the water and wastewater sector, oil and gas and energy industries. Its primary focus is on solutions which are designed for manufacture and assembly DfMA; reducing on site construction time, reducing carbon footprint and minimising risk. At our Southampton based headquarters we have over 1000 sq. metres of internal manufacturing space as well as external areas for assembly and storage of larger materials and manufactured components. We design, manufacture and assemble to a range of different standards including CE/CA marking, EXC2 Structural Steel, BS and ASME welding procedures. Our strength within Te-Tech culminates in our integrated service, offering the complete process solution package, from digital design, automation and control through to off-site manufacture and on site assembly.

    Treatment Process Technologies
    Contractors
    Trant Engineering Ltd logo

    Trant Engineering Ltd

    United Kingdom

    Trant provide high quality engineering and project delivery services to the municipal & industrial process & water treatment markets in the UK and Internationally. We have 60 years’ experience in the successful delivery of complex water, wastewater and process treatment solutions for the main UK process & water companies. We develop innovative, cutting edge process and water solutions using advanced technology. Working closely with our technology partner SFC Umwelttechnik, we are able to utilise proven advanced technology resulting in optimal solutions for our water and process industry clients in the UK and internationally. Our in-house design teams understand the stringent regulatory challenges faced by our clients and ensure that efficiency, resilience and sustainability are factored into all design solutions. Our design studio use the latest software including BIM, augmented and virtual reality to develop and detail high tech treatment process outputs. Our control & automation and offsite manufacturing & assembly facilities enable us to provide full in-house capability from project conception through to commissioning.

    Networks - Sewerage
    Accreditations
    Liquid X logo

    Liquid X

    Verified
    United Arab Emirates1-50 employees
    Granular Activated Carbon (GAC) Filters · GO–Polymer Composites · Cartridge Filters
    mea

    Liquid X is a water technology consultancy and commercialization platform focused on accelerating the deployment of next-generation filtration solutions, with a core emphasis on graphene-based water treatment. Founded to address the gap between breakthrough innovation and real-world implementation, Liquid X operates at the intersection of advanced material science, water infrastructure, and market deployment. While significant advances in water technologies exist globally, many remain confined to laboratories or early-stage ventures. Liquid X bridges this gap by identifying, validating, and commercializing high-impact solutions—particularly graphene-based filtration systems—within the GCC and wider MENA region. Our consultancy model is built around a full lifecycle approach: from technology scouting and technical evaluation to pilot design, validation, and scaled deployment. We work with asset owners, governments, and enterprises to translate emerging technologies into practical, site-ready solutions. This includes designing pilot programs with measurable performance metrics, enabling data-driven decision-making, and ensuring that innovations are proven under real operating conditions before scale-up. A key focus of Liquid X is the commercialization of graphene-based water filters. Graphene, a two-dimensional material with exceptional strength, permeability, and adsorption capacity, has the potential to fundamentally transform water treatment. Its nano-scale structure allows precise separation of contaminants while enabling faster water flow and lower energy consumption compared to conventional systems. Through strategic partnerships with innovators, researchers, and manufacturers, Liquid X is actively working to bring graphene filtration technologies from concept to market. These systems are being developed to address some of the most critical water challenges, including the removal of PFAS and emerging contaminants, heavy metals, dissolved solids, and industrial pollutants—while significantly reducing waste and energy intensity associated with traditional technologies such as reverse osmosis. Our role extends beyond technology development. Liquid X supports the full commercialization journey, including: Technical due diligence and performance validation Pilot implementation and third-party verification Integration with existing infrastructure Development of scalable deployment models Coordination with EPC contractors, facility managers, and regulators Ongoing monitoring, compliance, and optimization By operating as a vendor-agnostic platform, we ensure that solutions are selected based on performance, suitability, and long-term value—not vendor bias. The MENA region faces some of the world’s most acute water challenges, including scarcity, high desalination dependence, and rising energy costs. Liquid X is positioned to introduce more efficient, decentralized, and sustainable alternatives through advanced filtration technologies. Graphene-based systems, in particular, offer the potential for lightweight, modular, and energy-efficient treatment solutions that can be deployed at scale across residential, commercial, and industrial applications. At its core, Liquid X is not just a consultancy—it is an enabler of the next generation of water infrastructure. By combining deep regional expertise with global innovation networks, we are helping transform how water is treated, distributed, and consumed. Our mission is to accelerate the transition from legacy, resource-intensive systems to smarter, more sustainable water solutions—unlocking the full potential of graphene and other advanced materials to build a more water-secure future.

    Activated Carbon Filtration
    Nanofiltration (NF) Systems
    Point-of-Use (POU) Filtration Systems
    +11 more
    food-beverages
    hospitality-tourism
    EC Solutions logo

    EC Solutions

    Verified
    United Arab Emiratesfreelance
    Conventional EC
    apac · china · europe +3 more

    EC Solutions is a specialized consultancy focused on electrochemical technologies for water and wastewater treatment. We believe electrochemical processes, and electrocoagulation in particular, are among the most promising technologies in the water sector today. As a rule of thumb, anything that can be treated with conventional coagulation–flocculation can be pretreated with electrocoagulation, without adding chemicals. That means less chemical handling, lower sludge complexity, and more controllable treatment outcomes. We help industries evaluate, pilot, and implement electrocoagulation as a robust pretreatment or core process for color removal, heavy metals, TSS, emulsified oils, and complex industrial effluents. If you’re dealing with a difficult water challenge and want a cleaner, smarter alternative to chemical treatment, EC Solutions is built for that.

    Greywater Recycling Systems
    Industrial Process Water Reuse
    Industrial Wastewater Treatment Plants
    +2 more
    manufacturing
    food-beverage
    PNR ITALIA Srl logo

    PNR ITALIA Srl

    Verified
    Italy51-200 employees
    Spray Evaporator · Self-cleaning Screen Filters
    apac · europe · latam +2 more
    19 case studies

    We produce a comprehensive range of spraying solutions, encompassing everything from small-scale nozzles to large industrial spraying systems. Our diverse product line includes various types of nozzles tailored to meet the specific requirements of every application and customer need. The company was established in Milan in November 1968, focusing on distributing parts and components for fire protection systems. Over time, we expanded our offerings to include a diverse range of industrial sprayers tailored to various applications. In addition to our distribution and manufacturing of fire protection system components and industrial sprayers, we specialize in designing and producing pneumatic spray nozzles for industrial use and tank washing nozzles. Our product line also encompasses a variety of complementary accessories essential for industrial washing, including filters, spray guns, and hoses. Furthermore, we offer ejectors, blower nozzles, swivel joints, and hose clamps to provide comprehensive solutions for our customers' needs. PNR Italia is part of the Tecomec Group and oversees four other affiliated companies to form PNR Company, a consolidated reality with a significant presence on the market.

    Microfiltration (MF) Systems
    Disinfection Technologies
    Disinfection Chemicals
    +7 more
    agriculture
    manufacturing
    Chemidose Limited logo

    Chemidose Limited

    United Kingdom

    Specialist support for water treatment, Chemidose Limited is able to provide assistance with your chemical dosing needs. Whether it is liquid dosing or gas dosing, drinking water treatment or process water conditioning, we can help with any stage of deployment from design through to installation and commissioning.  Although we have our own products, we are also happy to install other manufacturer’s if preferred. Chemidose Limited have been designing, building and installing gas and liquid chemical dosing systems since 2003 and have built up an impressive customer base over the years. Based in Sittingbourne, Kent we are well placed to serve the South East but equally have installed nationally and internationally. Chemidose Limited have experience in many industries including water utilities, paper, beverages, aerospace and construction and take on projects such as installing a sample kiosk through to turnkey total water treatment packages involving multiple treatment processes, managed by proven controls and safety systems. Our team has decades of water treatment experience and are able to design, manufacture, install and commission. Supporting this with comprehensive CAD, project and business management systems.

    Treatment Process Technologies
    EMS Industries Ltd logo

    EMS Industries Ltd

    United Kingdom

    EMS are a UK based manufacturer of positive displacement ram pumps and grit removal solutions used traditionally in the wastewater industries but also in the food waste (AD) sector. EMS Industries was established in 1995 and has since grown into a world-renowned name for providing robust, reliable products which have provided our substantial client list with many years of trouble free service. All EMS products are designed, manufactured and tested in our Stoke on Trent operational facilities where we can also offer additional services including spare parts, service and repairs, installation, commissioning, operator training packages and full CAD and 3D modelling services. As a framework provider to some of the major UK utility companies, we ensure that our products meet with all current legislation and continually strive to provide innovative products to the market place.

    Treatment Process Technologies

    Advanced Oxidation Process Design for Trace Contaminant Destruction

    Advanced oxidation processes (AOPs) generate hydroxyl radicals (·OH) with oxidation potential of 2.8 V — second only to fluorine — to mineralize pharmaceuticals, pesticides, 1,4-dioxane, NDMA, and other recalcitrant micropollutants. The dominant configurations are UV/H₂O₂ (peroxide 5–25 mg/L, UV dose 500–1,500 mJ/cm²), ozone/H₂O₂ (peroxide-to-ozone mass ratio 0.3–0.5), UV/chlorine, and catalytic ozonation. Each is selected on a contaminant-specific basis using bench-scale hydroxyl-radical exposure (Rct) testing on actual feedwater.

    Electrical energy per order (EE/O) is the universal AOP design metric: kWh required to reduce a target contaminant by one log (90%) per cubic meter. Typical EE/O values are 0.5–2 kWh/m³ for UV/H₂O₂ on 1,4-dioxane, 0.1–0.5 kWh/m³ for ozone/H₂O₂ on pharmaceuticals. Scavenging from bicarbonate alkalinity above 100 mg/L CaCO₃, dissolved organic matter, and chloride raises EE/O substantially. Feedwater pretreatment via softening, biological filtration, or low-pressure RO is often the first design lever before AOP sizing.

    Regulatory drivers include the EU Urban Wastewater Treatment Directive recast 2024 requiring micropollutant removal at large WWTPs by 2045, California Title 22 indirect potable reuse, and Singapore NEWater standards. AOPs are typically the polishing barrier between MF/UF + RO and the final blending point. Specify residual oxidant quench (sulfite or GAC) to protect downstream distribution and avoid bromate formation when treating high-bromide waters above 50 µg/L. Aguato lists AOP providers with proven pilot-to-full-scale references.

    Frequently Asked Questions

    Which AOP is best for removing 1,4-dioxane from groundwater?

    UV/H₂O₂ is the established choice for 1,4-dioxane because the contaminant absorbs UV poorly but reacts readily with hydroxyl radicals. Typical design uses 3–10 mg/L H₂O₂ dose, 800–1,500 mJ/cm² UV dose with low-pressure UV lamps, achieving 1–2 log removal at EE/O of 0.5–2 kWh/m³. Bicarbonate alkalinity is the dominant scavenger; pre-softening or low-pressure RO ahead of UV/H₂O₂ reduces operating cost dramatically.

    What is EE/O and why does it matter for AOP design?

    Electrical energy per order (EE/O), in kWh/m³, is the energy required to achieve one log (90%) reduction of a target contaminant. It is the universal AOP cost metric — lower EE/O means lower OPEX. For 1,4-dioxane, EE/O ranges from 0.3 kWh/m³ (low scavenging, optimal peroxide) to >3 kWh/m³ (high alkalinity, high TOC). Always demand pilot-derived, contaminant-specific EE/O before procurement.

    When should I choose ozone/H₂O₂ over UV/H₂O₂?

    Ozone/H₂O₂ (peroxone) is preferred for high-flow potable reuse where capital cost favors ozone contactors over UV reactors, for waters with high UV-blocking (color, iron), or for combined taste-and-odor and micropollutant duty. UV/H₂O₂ is preferred for groundwater with low UV-blocking, for NDMA destruction (UV directly photolyzes NDMA), and where bromate formation must be avoided in high-bromide source water.

    Do AOPs produce harmful disinfection byproducts?

    Yes - bromate (regulated at 10 micrograms/L under UK WS(WQ)R 2016 and EU DWD 2020) forms when ozonating waters with bromide above 50 micrograms/L. NDMA can form in UV/chlorine systems treating amine-containing waters. Aldehydes and assimilable organic carbon increase post-AOP, requiring biofiltration polishing. Pilot testing must quantify byproduct formation before full-scale design lock.

    Case Study·Indirect potable reuse scheme, groundwater replenishment, Thames Valley, UK
    Challenge

    A water company evaluating indirect potable reuse of highly treated effluent for aquifer replenishment needed to demonstrate removal of pharmaceutical micropollutants (carbamazepine, diclofenac, metformin) to below 100 ng/L and 1,4-dioxane to below 10 micrograms/L before allowing recharge to the chalk aquifer. Conventional secondary treatment alone achieved less than 20% removal of these compounds.

    Approach

    A pilot AOP train comprising ozone/H2O2 (O3:H2O2 ratio 0.4 by mass, ozone dose 8 mg/L) followed by biologically active carbon filtration was designed and tested at pilot scale over 12 months using actual site effluent. The BAC stage after ozonation removed assimilable organic carbon generated by partial oxidation and provided an additional polishing barrier for residual micropollutants.

    Outcome

    Pilot testing achieved greater than 99% removal of carbamazepine, diclofenac, and metformin to below 10 ng/L, and 1,4-dioxane reduction from 45 to below 2 micrograms/L. Bromate formation was controlled below 5 micrograms/L by pH depression to 6.8 ahead of ozonation, well within the 10 micrograms/L limit. Results supported the DWI risk assessment submission for the reuse scheme.

    Questions to Ask Shortlisted Providers

    1. 1

      What hydroxyl radical exposure (Rct) have you measured for our specific feedwater matrix, and how does scavenging from bicarbonate alkalinity and dissolved organic matter affect your EE/O calculations?

      Rct is feedwater-specific; using a generic value from a different water matrix will underestimate or overestimate the UV/H2O2 or ozone dose required for your target contaminant removal.

    2. 2

      Have you pilot-tested the proposed AOP on our actual feedwater, and can you provide EE/O data for our target compounds across the seasonal range of water quality we experience?

      EE/O must be measured on actual feedwater at representative seasonal conditions; laboratory data using spiked clean water dramatically underestimates real-world energy consumption.

    3. 3

      What byproducts do you predict at the proposed oxidant dose on our feedwater, and have you measured bromate, NDMA, and aldehyde formation in pilot tests?

      AOP byproduct formation is feedwater-specific and dose-dependent; without pilot-measured byproduct data, full-scale design cannot confirm regulatory compliance.

    4. 4

      What quench or polishing step follows the AOP stage, and how does it handle residual oxidant, assimilable organic carbon, and any treatment byproducts?

      Residual H2O2 or ozone damages downstream membranes if not quenched; AOC increase post-AOP requires BAC polishing to prevent regrowth in distribution.

    5. 5

      What operational flexibility does the system have to increase or decrease oxidant dose in response to variable inlet water quality, and what is the minimum and maximum dose range?

      Source water quality varies seasonally and with upstream discharges; the AOP system must be able to respond to these variations while remaining within byproduct formation limits.

    What Drives Cost in This Category

    Target contaminant and required log removal

    EE/O varies by more than an order of magnitude between easy-to-oxidise compounds and recalcitrant ones like 1,4-dioxane; the number of log removals required directly determines energy cost per cubic metre.

    Feedwater UV transmittance and scavenging

    Low UVT (below 80% at 254 nm) requires proportionally more UV energy to deliver the same effective UV dose at the target volume; high alkalinity scavenges hydroxyl radicals, requiring higher H2O2 dose and longer contact time.

    Ozone versus UV infrastructure

    Ozone generation requires on-site oxygen supply and ozone contactors (concrete or stainless steel vessels); UV systems require UV reactors and H2O2 dosing; capital cost profiles differ significantly, with ozone systems typically costing more at scales above 2,000 m3/day.

    Downstream BAC polishing requirements

    If biologically active carbon polishing is required to manage AOC and residual oxidant post-AOP, the contactor vessels, media, and backwash infrastructure add 20 to 40% to the capital cost of the AOP stage alone.

    Key Regulations & Standards

    Water Supply (Water Quality) Regulations 2016

    Sets the bromate parametric value of 10 micrograms/L that constrains ozone dose in UK drinking water treatment, and provides the framework for emerging micropollutant guideline values.

    DWI Regulation 31

    AOP processes using ozone, hydrogen peroxide, or UV above defined outputs require DWI prior approval before installation on a public water supply, including toxicological review of any new chemicals used.

    BS EN 14897

    Standard for UV treatment devices for drinking water, specifying performance testing, validation dose requirements, and installation guidance.

    UKWIR Guidelines on Wastewater Reuse for Potable Purposes

    Provides the UK framework for demonstrating sufficient pathogen and contaminant reduction for indirect potable reuse schemes, relevant to AOP systems treating advanced effluent for groundwater replenishment.