Miniaturized electrochemical sensor for in-line total chloramine detection using nanomaterial electrocatalysts

Technology
Conceptual
University

A miniaturized electrochemical sensor that quantitatively detects trace total chloramines in real time via electrocatalytic reactions at noble metal nanocrystal electrodes. Designed for in-line monitoring of feed water with high sensitivity and selectivity, leveraging 25+ years of sensor development expertise.

Overview

This solution is a miniaturized electrochemical in-line sensor engineered to quantitatively and directly detect trace amounts of total chloramines in water. It exploits the unique oxidizing and metal-binding reactivity of chloramines, using electrocatalytic reactions at noble metal nanomaterial electrodes to achieve sensitive and selective detection. The technology is designed to meet the demanding analytical requirements of in-line feed water monitoring, offering a compact, real-time alternative to conventional chloramine measurement methods.

Technical specifications

Detection approach:

  • Electrocatalytic reduction of total chlorine and chloramine species at noble metal nanocrystal electrodes, including platinum, palladium, and gold
  • Direct electrochemical readout, eliminating the need for reagent-based assays or sample preparation
  • Miniaturized sensor format suitable for continuous in-line deployment in water treatment systems

Key performance characteristics demonstrated in prior work:

  • Detection limit of 2.0 micromolar for monochloramine
  • Detection limit of 0.2 micromolar for dichloramine
  • High selectivity arising from the unique adsorption and coordination chemistry of chloramines at catalytic nanomaterial surfaces

Development objectives:

  • Identify and optimize the best-performing nanocrystal electrocatalysts for total chloramine detection
  • Integrate the optimized nanomaterials into a miniaturized sensor architecture
  • Benchmark and validate analytical performance against the requirements for in-line feed water sensing
Technology readiness level

The underlying electrochemical detection principle has been validated in published analytical chemistry research, with demonstrated detection limits for monochloramine and dichloramine. The principal investigator's laboratory has more than 25 years of experience developing real-time and miniaturized electrochemical sensors for chloramine monitoring. Current and planned work focuses on advancing the technology from validated laboratory detection toward a fully miniaturized, in-line sensor benchmarked against industry specifications for feed water monitoring.


About Oakland University

Oakland University is a public doctoral research university serving nearly 16,000 students on a 1,443‑acre campus spanning Rochester Hills and Auburn Hills in southeast Michigan. Industry engagement is organized around an on‑campus SmartZone business incubator and the Oakland Business Engagement Center, a single entry point to faculty, facilities, and partnerships. A medical school aligned with the Corewell Health system enables clinical collaboration, while robust internship and co‑op pathways connect companies to talent across the Detroit region. Research is supported by competitive federal funding and by state and industry partners. A dedicated technology transfer function within the Research Office assists with IP evaluation, patenting, licensing, and startup formation.

Halo home
Partner smarter. Move faster.
Get new partnering requests
delivered to your inbox.