FTIR spectroscopy method for identifying and quantifying PLA, PHA, and their blends

Technology
Conceptual
University

A rapid, accurate FTIR spectroscopy method to identify and quantify polylactic acid (PLA) and polyhydroxyalkanoate (PHA) biodegradable plastics and their blends. The approach supports mechanical recycling by enabling fast, non-destructive composition analysis of bio-based plastic waste streams, facilitating sorting and quality control for circular economy applications.

Overview

This research proposes developing a rapid, accurate analytical method using Fourier Transform Infrared (FTIR) spectroscopy to identify and quantify polylactic acid (PLA) and polyhydroxyalkanoate (PHA) biodegradable plastics, as well as their blends. As demand for bio-based and compostable plastics grows, effective mechanical recycling requires reliable ways to distinguish between polymer types and determine blend compositions. This method addresses a critical gap in plastics sorting and quality control, supporting circular economy goals for sustainable packaging and single-use plastics.

Technical specifications
  • FTIR-based identification: Measures infrared absorption patterns unique to each polymer's chemical functional groups, enabling material identification
  • PLA detection: Identifies lactic acid-based polymer signatures in the FTIR spectrum
  • PHA detection: Identifies hydroxyalkanoate-based polymer signatures in the FTIR spectrum
  • Blend quantification: Combines spectra of pure PLA and pure PHA, with relative peak intensities correlating to blend composition ratios
  • Quantitative modeling: Develops predictive models linking spectral features to blend composition percentages
  • Validation approach: Builds a reference library from pure commercial PLA and PHA samples, then tests against laboratory-produced blends and independent samples
Technology readiness level

This research is at an early stage (TRL 2-3). The hypothesis is supported by a 2020 published study characterizing FTIR spectra of PHA, PLA, and their blends, though quantitative correlation between blend composition and spectral peak intensity remains to be demonstrated. Future work includes building a spectral library, investigating how spectral features change with composition, developing a quantitative prediction model, and validating it with independent samples.


About South Dakota State University

South Dakota State University is a comprehensive public land‑grant research university serving a large statewide community. Industry engages through a university‑linked research and technology park that colocates tenant companies with faculty labs and pilot‑scale processing suites for de‑risking and demonstration. A statewide extension network and field sites provide real‑world environments for validation and market feedback, while shared‑use core facilities and tailored workforce pipelines connect talent and tools to corporate R&D. Research is supported by competitive federal funding from USDA and NSF, with additional awards from NIH and DOE, alongside state and industry partnerships. A dedicated technology transfer office manages IP and industry agreements, and incubator space at the research park supports startup formation and scale‑up.

Sign up to access the full partnering listing.
View the details of this partnering listing and connect directly with the teams behind promising technologies.
Halo home
Partner smarter. Move faster.
Get new partnering requests
delivered to your inbox.