A compact multi-band optical sensor that uses colorimetric strip probes immobilized in a transparent sol-gel polymer matrix, combined with multivariate analysis, to enable continuous, objective measurement of free chlorine and chloramine concentrations in water. Eliminates the subjectivity and repeatability issues of conventional colorimetric strip tests.
This solution addresses a long-standing limitation in water quality monitoring: the subjectivity and poor repeatability of colorimetric strip tests for free chlorine and chloramine. By immobilizing colorimetric probe compounds within a transparent inorganic polymer matrix and integrating them into a flow channel, the technology enables continuous optical measurement of these disinfectants. A compact multi-band optical device paired with multivariate analysis algorithms converts the optical response into reliable concentration readings, removing the variability introduced by manual interpretation of color changes.
The approach is well suited to drinking water treatment, distribution networks, industrial process water, and aquaculture, where accurate and continuous disinfectant residual monitoring is critical for safety and regulatory compliance.
Key features:
How it works:
The immobilized probes react with target analytes in the flowing water, producing a measurable color change. The optical device records the resulting spectrum, and the multivariate model interprets the multi-wavelength response to output a concentration value, reducing interference and improving accuracy compared with single-wavelength or visual readings.
The underlying combination of multi-band optical sensing and multivariate analysis has been demonstrated in a prior industrial collaboration for continuous protein measurement in dairy processing, confirming the feasibility of the methodology. Current development focuses on preparing sol-gel materials with immobilized chlorine and chloramine probes, training and validating the multivariate regression model using solutions of known concentration, and then constructing a bespoke sensor from available optical components. The technology is at an early-to-mid stage of development, transitioning from laboratory proof-of-concept toward a functional sensor prototype.
Formerly an institute of technology, Cork Institute of Technology served the southwest of Ireland from multiple Cork campuses and, since January 1, 2021, operates as part of Munster Technological University. Industry engagement was built around an on‑campus incubator, applied research centres with shared laboratories and industry testbeds, and a specialised maritime training campus. Partners accessed prototyping, simulation, and pilot‑scale facilities co‑located with academic programs, enabling short‑run projects and workforce upskilling. Research is supported by competitive national and European funding as part of MTU. A dedicated technology transfer office supported IP, licensing, and spin‑out formation.