Decontamination
Every material entering an aseptic environment creates a potential contamination pathway. Even when the content is sterile, external surfaces may have been exposed during handling, storage and transportation.
For heat-sensitive materials, steam sterilization is not an option. Yet transferring them without validated surface treatment can compromise the entire aseptic boundary.
The sterility of the content cannot compensate for an uncontrolled external surface.
Decontamination closes this contamination control pathway before materials enter cleanrooms, RABS or isolators.
H₂O₂ EFFICACY CANNOT BE INFERRED FROM THE QUANTITY INJECTED.
It depends on the concentration actually achieved around the load and controlled from lethal exposure through safe release.
We bring sterilization-grade process control to surface decontamination.
By combining our own vaporization technology with direct concentration measurement and feedback control, we govern the complete H₂O₂ cycle as one pharmaceutical process, engineered around the load and ready for validation.

EVERY CRITICAL SURFACE EXPOSED
Load supports and trolley systems are engineered to minimize contact points and shadowed areas, enabling controlled H₂O₂ distribution around exposed surfaces.
HIGH THROUGHPUT UNDER GRADE A CONTROL
Large-capacity chambers, automatic loading and unloading, controlled airflow and continuous particle monitoring support high-volume material flows while maintaining Grade A conditions throughout processing and storage.
FREEDOM FROM PROPRIETARY CHEMISTRY
No proprietary peroxide solution is required. Customers retain control over the supplier and concentration of the aqueous H₂O₂ solution, reducing consumable dependency and operating constraints.
DEDICATED PROCESS CONTROL FUNCTIONS
The cycle governs four interconnected phases:
- Dehumidification: chamber conditions are prepared for controlled H₂O₂ distribution.
- Conditioning: vaporized hydrogen peroxide is introduced until the defined concentration is reached.
- Decontamination: the target concentration is maintained for the validated exposure time, achieving a 6-log reduction of surface bioburden.
- Aeration: residual H₂O₂ is removed and monitored until the defined release threshold is reached, typically 1 ppm.
Cycle parameters are adapted to load quantity, material behaviour and absorption characteristics. The decontamination phase can be completed in approximately 30 minutes.

6-Log
validated reduction of the initial bioburden on exposed load surfaces
1 ppm
H₂O₂ monitored during aeration until the defined safe-release threshold is reached
30 Minutes
surface-decontamination phase completed in approximately 30 minutes
25 m³
proven high-throughput chamber configuration for exceptionally large and complex material flows
PRESTERILIZED COMPONENTS FOR ASEPTIC MANUFACTURING
Stopper bags, syringes, wrapped components and other presterilized materials can enter RABS, isolators and cleanrooms through a validated surface-decontamination process.
HIGH-THROUGHPUT ASEPTIC MANUFACTURING
Multiple-trolley capacity, automatic loading and unloading and continuous particle monitoring support applications where material transfer must keep pace with production while maintaining Grade A conditions.
LARGE AND COMPLEX MATERIAL FLOWS
Custom-engineered chambers accommodate large loads and demanding transfer patterns, combining controlled H₂O₂ distribution with repeatable load positioning and automated handling.
HEAT-SENSITIVE PROCESS MATERIALS
Dry excipients, microbiological monitoring supplies and other non-autoclavable materials can be introduced into controlled areas without exposure to high temperatures.
Can the process accommodate different materials and loads?
Yes. H₂O₂ concentration, exposure time and aeration are adapted to load quantity, configuration, absorption behaviour and validation requirements.
Can the system support high-throughput production?
Yes. The technology can be engineered with large-capacity chambers, multiple-trolley configurations, automatic loading and unloading, continuous particle monitoring and Grade A storage conditions.
Is proprietary hydrogen peroxide required?
No. Customers can select the supplier and concentration of the aqueous H₂O₂ solution according to their operational requirements.
Why is direct H₂O₂ concentration measurement important?
The injected quantity alone does not demonstrate the concentration achieved around the load. Direct high- and low-range measurement allows the process to govern lethal exposure and confirm safe residual levels before release.
What microbiological reduction does the process achieve?
The process achieves a validated 6-log reduction of the initial bioburden on exposed load surfaces.
What does the Process Decontaminate?
The process achieves validated microbiological reduction on exposed load surfaces, creating a controlled entry route for heat-sensitive and presterilized materials entering aseptic environments.
INSULIN PROCESSING
Insulin production increasingly relies on high-throughput syringes and cartridge filling lines, with cartridges serving reusable and disposable delivery pens. At these output levels, filling capacity alone does not determine production performance.
Closures and reusable filling-line parts must be washed, sterilized, handled and delivered to the filling area at the required pace and under controlled aseptic conditions. If these upstream activities are managed as separate, disconnected operations, they can become a bottleneck while increasing equipment, transfers, manual handling and operating costs.
ASEPTIC TRANSFER
Aseptic manufacturing depends on preserving the required state of every material until its point of use. Yet reusable parts, pre-sterilized components, bulk closures, tools and auxiliary materials enter the process from different conditions, through different routes and with different vulnerabilities.
Treatment alone does not secure the flow: unloading, transport, storage, manipulation and connection create critical interfaces where control can be lost. As manufacturing architectures become more closed, integrated and automated, aseptic transfer becomes a system-level responsibility.
VACCINES
Vaccine manufacturing places exceptional demands on fill-finish operations, where product sterility depends on the controlled preparation and transfer of every component entering the aseptic filling area.
Sterile vials, stoppers and product-contact machine parts must be available in step with the filling line and introduced without contamination or particle exposure. Multiple preparation systems, intermediate containers and manual transfers increase process complexity, footprint and critical interfaces. Dependence on ready-to-use components can also limit sourcing and campaign flexibility.
ALBUMIN PASTEURIZATION
Albumin is a heat-sensitive biological product. Once prepared, purified, formulated and stabilized, it is sterile-filtered and aseptically filled into final glass vials or bottles. Because it is not subjected to conventional terminal sterilization at 121°C, the filled and sealed containers undergo validated pasteurization at 60°C for at least 10 hours to support viral inactivation while preserving protein stability and product quality.
Albumin pasteurization is traditionally performed in water-bath systems. Although effective for heat transfer, this established approach requires very large quantities of process water, increasing utility consumption, wastewater generation and operating costs across a long and production-critical treatment
HIGH-VISCOSITY PRODUCTS
Hyaluronic acid pre-filled syringes combine a thermally sensitive formulation with a pressure-sensitive container-closure system. Product performance depends on the molecular weight and rheological behaviour of the formulation, while moist heat progressively reduces viscosity as exposure continues. At the same time, heating increases the internal pressure of the filled syringe through liquid expansion and vapour pressure, potentially causing plunger movement, leakage or loss of container integrity.
STERILE POWDER MANUFACTURING
Sterile powder manufacturing presents one of the most demanding combinations of aseptic processing and high-containment production. Reusable containers, machine parts and thermosensitive materials must each follow dedicated preparation pathways before entering the filling environment, while uninterrupted production campaigns require a sufficient number of sterile containers to be available before filling can even begin. The challenge therefore extends well beyond aseptic filling itself: manufacturers must coordinate washing, depyrogenation, sterilization, material bio-decontamination, protected transfers and containment into a single validated manufacturing workflow that preserves both product sterility and operator safety.
HIGH-POTENT ASEPTIC MANUFACTURING
High-potent sterile manufacturing is one of the fastest-growing pharmaceutical sectors, driven by oncology biologics, antibody-drug conjugates (ADCs), peptides and other highly active compounds. While aseptic filling remains essential, manufacturers must simultaneously protect product sterility, operators and the surrounding environment. As occupational exposure limits decrease to the ng/m³ range, every reusable machine component leaving the filling isolator becomes a potential contamination source.
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