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Mineral Oxychloride Technology
A liquid mineral oxychloride chemistry that delivers ozone-class oxidation — without dissolving a gas in water — at less than one percent of the cost of a conventional ozone system.
The Chemistry
Ozone-class oxidation, delivered as a ready-to-use liquid.
Mineral oxychloride is a liquid chelation of minerals with oxygen, expressed as MxOxClt. The oxygen atoms are weakly bound, so on contact with water and contaminants the complex releases them and generates a family of reactive oxygen species (ROS). The idea was first explored in the early 1900s, but it could only be measured and controlled once modern oxidation-reduction potential (ORP) instruments arrived late in the twentieth century. Jenfitch, founded in 2008, brought the chemistry to market as JC 9450 in 2013 and later as the EPA/USDA-registered flagship JC 9465.
The ROS family generated includes the superoxide anion (O2−), the hydroxyl radical (OH•), singlet or nascent oxygen (1O2), hydroperoxyl (HO2−), and hydrogen peroxide (H2O2). Together these give the product an oxidation potential of 2.8–2.9 V — second only to fluorine and on par with the hydroxyl radical itself. Because the reaction is effectively catalytic, the mineral-oxide by-products are mildly biocidal (they resist recontamination) and remain below FDA limits. The product is 100% water-soluble and ready to use.
The catalyzed reaction
Sodium hypochlorite alone dissociates to hypochlorous acid, hypochlorite ion, and a small amount of hydroxyl radical: NaOCl → HOCl + OCl− + OH•. With the Jenfitch mineral catalyst present, the same feed is driven further — Catalyst + NaOCl → HOCl + OCl− + OH• + M complexes — producing the broader ROS spectrum and the much higher effective oxidation potential.
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Controlled by ORP, not just dose
Oxidation-reduction potential (measured in millivolts) is the practical control variable. Kill efficacy tracks ORP rather than parts-per-million alone, so treatment can be metered precisely to the target barrier for each process.
Disinfection Benchmark
Higher ORP means fewer surviving organisms.
Because the chemistry is metered to ORP, the relationship between the millivolt target and the surviving bacterial count is predictable. The table below shows the benchmark used to set disinfection and sterilization barriers.
ORP-to-CFU benchmark. Source: Jenfitch technical documentation.
| ORP (mV) | Surviving count (CFU/100 mL) | Effect |
| +200 | 300 | Partial reduction |
| +300 | 36 | Reduction |
| +400 | 3 | Strong reduction |
| +600 | 0 | Disinfection |
| +800 | 0 | Sterilization |
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6-log kill in under 10 seconds
Holding ORP above roughly +700 mV delivers a 6-log pathogen reduction in less than ten seconds of contact — the basis for the disinfection barrier used in food-safety and post-harvest applications.
Pathogen Efficacy
Salmonella inactivation vs. hypochlorite.
In a 30-minute contact test starting from a heavy challenge of 2.0×107 CFU/mL of Salmonella enterica, JC 9465 at just 2 ppm matched what sodium hypochlorite required 100 ppm to achieve — roughly a fiftyfold difference in dose.
Salmonella enterica, 30-min contact, 2.0×10⁷ CFU/mL start. Source: Jenfitch efficacy testing.
| Treatment | Dose | Log reduction |
| JC 9465 | 2 ppm | 6.60 log |
| Sodium hypochlorite | 10 ppm | 2.02 log |
| Sodium hypochlorite | 100 ppm | 6.49 log |
Across biofilms, bacteria, viruses, and spores, the technology is reported 12–24× more effective than chlorine.
By The Numbers
Why operators choose it.
2.8–2.9 VOxidation potential — above ozone
<1%Of the cost of an ozone system for equivalent oxidation
6×Shelf life vs. sodium hypochlorite (6 months vs. ~30 days)
12–24×More effective than chlorine on biofilm & pathogens
Ozone & Chlorine, Replaced
The oxidation of ozone without the ozone system.
No gas to generate or handle
Ozone must be generated on site and dissolved into water, with the capital, power, and safety burden that implies. Mineral oxychloride ships as a stable liquid that meters straight into the stream — at less than one percent of the cost of an equivalent ozone installation.
A residual that ozone can’t leave
Ozone dissipates almost immediately, so it offers no protection against recontamination. The mineral-oxide by-products of this chemistry are mildly biocidal and persist as a residual barrier — useful for cooling loops, reuse water, and mussel control alike.
Longer shelf life than hypochlorite
The product holds a six-month shelf life versus roughly thirty days for sodium hypochlorite — a 6× improvement that reduces waste, restocking, and dosing drift.
Far lower dose than chlorine
On inorganics the product works at under 1.0 mg/L per mg/L where chlorine can need about 6 mg/L, and it reaches sterilization-grade ORP where chlorine cannot go.