Functionalized natural plant fiber filters for water hardness removal

Technology
Conceptual
University

Green, low-cost water filtration technology using functionalized natural plant fibers to capture hardness-causing cations. Offers an inexpensive, easy-to-maintain alternative to conventional ion exchange resins and activated carbon for dead-end filtration water purification.

Overview

This solution addresses water hardness removal using functionalized natural plant fibers as filter materials. The technology leverages hydroxyl and carboxyl functional groups on plant fiber surfaces to capture hardness-causing cations, such as calcium and magnesium, through dead-end filtration. It offers an inexpensive, environmentally friendly, and easy-to-maintain alternative to conventional water softening materials like ion exchange resins and activated carbon. Potential applications include household water filters, small-scale community water treatment, industrial process water softening, and point-of-use purification systems in regions where affordable water treatment is a priority.

Technical specifications
  • Core mechanism: Surface functionalization of natural plant fibers with hydroxyl and carboxyl groups enables ion binding and capture of hardness-causing cations.
  • Filter format: Functionalized fibers are compressed into a solid filter cartridge compatible with standard dead-end filtration setups.
  • Material sourcing: Inexpensive, fiber-rich fruit plants including date palm, banana, mango, and pineapple serve as the base fiber materials.
  • Functionalization methods: Hydroxylation and carboxylation treatments applied to natural fibers to introduce the required ion-binding groups.
  • Process advantages: Minimal waste generation, simple maintenance, and lower material costs compared to conventional ion exchange resins and activated carbon.
  • Prior validation: Functionalized chitosan filters with hydroxyl and amine groups have been demonstrated effective for removing heavy metal ions across varying pH, salinity, and total hardness conditions using the dead-end filtration approach.
Technology readiness level

The underlying functionalization approach has been validated through prior work on chitosan-based filter materials, which were characterized by FT-IR spectroscopy and tested for heavy metal ion removal under varied water chemistry conditions. The current stage involves extending this proven approach to natural plant fibers. Planned future validation includes hydroxylation and carboxylation of multiple fiber-rich fruit plants, compressing the best-performing fibers into filter cartridges, and testing filtration efficiency and filter lifetime in dead-end filtration processes. The projected study timeline is approximately one year, with funding sought for fiber materials, reagents, and key personnel.


About University of Houston, Downtown

University of Houston–Downtown is a public, urban university within the University of Houston System, serving a diverse metropolitan student body and working professionals. Its location in the city’s business core gives companies easy access to faculty expertise, student talent, and on-campus labs for sponsored projects, internships, and capstone collaborations. Flexible engagement models—short courses, certificates, and customized contracts—help employers upskill teams and pilot solutions with minimal friction. Research activity is supported by competitive federal and state funding. A dedicated research administration office facilitates agreements, compliance, and IP management, coordinating commercialization pathways across the UH System when appropriate.

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