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09/01/2026 11:41

A Sustainable Flame Retardant Derived From Corn Steep Liquor

Britta Widmann Kommunikation
Fraunhofer-Gesellschaft

    Halogenated flame retardants raise environmental concerns and are considered harmful to human health. As a result, researchers have been searching for alternatives for many years. Fraunhofer researchers are focusing on sustainable phosphorus-based raw materials derived from corn steep liquor. The phytic acid it contains is an excellent natural flame retardant for biomaterials.

    Certain phosphorus compounds are highly effective at suppressing fires, which is why they are widely used in flame retardants. Phosphorus, however, is a finite resource. Estimates suggest it could be depleted within the next 50–300 years. That is why, as part of the ScaleAmP project (see below), a research team is working to extract phosphorus from corn steep liquor, a byproduct of starch production. The team brings together researchers from the Fraunhofer Institute for Wood Research, Wilhelm-Klauditz-Institut WKI and the Fraunhofer Institute for Applied Polymer Research IAP. Together with partners, they are using corn steep liquor to develop a flame retardant for use in wood-plastic composites (WPCs) and other biomaterials.

    The phytic acid that can be extracted from corn steep liquor, also known as phytate, is a natural source of phosphorus. It is found in large quantities in plants such as corn, wheat bran, soybeans and rice. “Commercial halogenated flame retardants are highly effective, but they are also toxic and environmentally harmful. To help protect the climate and meet regulatory requirements, industry is stepping up its transition to sustainable phosphorus-based flame retardants,” says Matthias Bischoff, a research scientist at Fraunhofer WKI. “We are supporting this trend by using the phytic acid in corn steep liquor as an active ingredient in flame retardants and developing a cost-effective process for producing the flame retardant on a technical scale.” The research partners are demonstrating potential applications and flame retardant properties using a wood-plastic composite material, which is used in construction and in the automotive and furniture industries.

    Thanks to its high phosphorus content, phytic acid has strong potential as a flame retardant, especially in the form of ammonium phytates. When heated, the molecule forms an insulating carbon layer that cuts off the fire’s oxygen supply. However, for effective flame retardancy, phytic acid absolutely requires a source of nitrogen to form a synergistic compound with phosphorus. Pure phytic acid is ineffective and has a very low pH, making it incompatible with most materials.

    Sustainable extraction of phytic acid

    One challenge the researchers faced was developing an efficient, cost-effective process to purify phytic acid, which is highly water-soluble. Using a series of simple procedural steps, Fraunhofer IAP researchers successfully extracted phytic acid. By separating solids from liquids and adjusting the pH, they separated proteins and organic acids, the main components of corn steep liquor. Another challenge was identifying which amines work best with phytic acid to evaluate flame retardant performance. To do this, Bischoff and his team at Fraunhofer WKI studied more than 20 different amines.

    Bio-based flame retardants can compete with commercially available, non-sustainable products

    The ammonium phytates obtained were compounded into WPC test specimens. To assess the flame retardant performance of different ammonium phytate formulations in varying ratios, the researchers ran standard tests such as the UL 94 flammability test and the limiting oxygen index test. They then compared the WPC specimens to assess the effectiveness of the various ammonium phytate formulations. The result: The best ammonium phytate formulation tested delivered flame retardant performance comparable with the commercially available reference product.

    So far, Fraunhofer researchers have been extracting phytic acid at the 1-kilogram scale. The next step would be to scale production up to 100 kilograms. They also plan to tap additional feedstocks beyond corn steep liquor, such as rice or wheat, and further refine the purification process. “Its potential for industrial-scale use hinges on the combination of a reliable supply, ease of processing, flame retardant performance and price,” Bischoff says.



    The ScaleAmP project

    Duration:
    January 1, 2025–June 30, 2026

    Funded by:
    German Federal Ministry of Agriculture, Food and Regional Identity (BMLEH)

    Project sponsor:
    Fachagentur Nachwachsende Rohstoffe e. V. (FNR)

    Project partners:
    • Cargill Deutschland GmbH (providing corn steep liquor)
    • Clariant Plastics & Coatings (Deutschland) GmbH (providing reference flame retardants)
    • Fraunhofer Institute for Applied Polymer Research IAP (extracting phytates from corn steep liquor)
    • Fraunhofer Institute for Wood Research, Wilhelm-Klauditz-Institut WKI (coordinator; synthesizing and testing bio-based flame retardants)


    More information:

    https://www.fraunhofer.de/en/press/research-news/2026/september-2026/a-sustainab...


    Images

    Researchers at Fraunhofer WKI and Fraunhofer IAP have successfully produced a sustainable flame retardant for biomaterials from corn steep liquor.
    Researchers at Fraunhofer WKI and Fraunhofer IAP have successfully produced a sustainable flame reta ...

    Copyright: © Fraunhofer WKI


    Criteria of this press release:
    Journalists
    Biology, Chemistry, Environment / ecology, Materials sciences
    transregional, national
    Cooperation agreements, Research projects
    English


     

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