A real-time, flow-through optical sensor that detects acrylamide in drinking water below WHO limits. Combines Surface Enhanced Raman Scattering (SERS) nanoparticles with a photonic grating to create a resonant nanophotonic cavity, enabling continuous in-situ monitoring with only an optical fiber connection and no separate power source.
This solution addresses the need for continuous, real-time detection of acrylamide in drinking water at concentrations below WHO safety limits. Acrylamide is a probable human carcinogen that can form during industrial water treatment processes, making reliable low-level monitoring important for public health and regulatory compliance.
The sensor pairs Surface Enhanced Raman Scattering (SERS) nanoparticle substrates with a photonic grating to form an optical resonant cavity. This configuration concentrates Raman excitation light into a submicron gap, producing an intense plasmonic field within a flow-through sampling chamber. Because analyte molecules pass through the enhanced field rather than having to bind to the sensor surface, the device supports repeated, continuous use without single-use limitations typical of conventional SERS sensors.
The sensor is designed for in-situ deployment, requiring only an optical fiber connection for laser delivery and spectral readout, with no need for a separate onboard power source.
Core approach:
Design validation completed:
The technology is at an early-to-mid stage of development. Computational modeling and design optimization have been completed, validating the photonic grating geometry and light-concentrating performance.
A six-month research plan is underway to advance the technology to a bench-top prototype, including fabrication and testing of the photonic grating with silver nanoparticle SERS substrates, assembly and testing of the flow-through cavity, construction of a standard curve to determine lower detection limits below 0.5 ppb, and optimization of the grating, substrate composition, or microfluidic structure as needed.