Functionalized silica gel for tunable removal of organic compounds from aqueous phases

Technology
Conceptual
Company

A tunable adsorption technology using functionalized silica gel to selectively remove organic contaminants from water. By grafting specific chemical groups onto silica surfaces, the technology enables targeted removal of compounds such as benzothiazoles and fatty aldehydes while leaving sugars and electrolytes untouched, supporting applications in water purification and process stream cleanup.

Overview

This technology leverages functionalized silica gel (FSiO₂) as a selective adsorbent for removing undesirable organic compounds from aqueous solutions. By tailoring the chemical groups grafted onto the silica surface, the adsorption selectivity can be tuned to target specific classes of organic molecules while leaving benign components such as sugars and salts unaffected. Preliminary data demonstrate that hydrophobized silica can achieve 57% removal of benzothiazole and 32% removal of 2-pentanol from dilute aqueous solutions within 20 minutes of contact time, with no measurable removal of sugars. The approach offers a scalable, cost-effective method for water purification and process stream treatment, particularly in applications where selective separation of organic contaminants is critical.

Technical specifications

Key features:

  • Selective adsorption driven by intermolecular interactions between target organics and grafted surface functional groups
  • Tunable selectivity through choice of grafted groups, including octadecyldimethylsilyl, trimethylsilyl, octyldimethylsilyl, phenyldimethylsilyl, triphenylsilyl, and diphenylmethylsilyl
  • Target compound classes include benzothiazoles (captured by aromatic surface groups) and fatty aldehydes (captured by surface basic sites)
  • Non-target components such as sugars and electrolytes remain in solution, preserving valuable dissolved species
  • Scalable process based on widely available silica gel and straightforward functionalization chemistry
  • High-throughput screening at the 3 mL scale, with planned scale-up to 20, 200, and 2000 mL for the most promising candidates
  • Thermodynamic modeling using HYSYS to guide candidate material selection and process design
Technology readiness level

The technology is currently at an early-to-mid stage of development. Proof-of-concept experiments have demonstrated selective uptake of model organic compounds using functionalized silica, with quantitative gas chromatography validation of removal efficiency. Unfunctionalized silica was shown to perform significantly worse, confirming the role of surface functionalization. Ongoing and planned work includes systematic screening of six different grafted functional groups across varying contact times, temperatures, and grafting densities, combined with thermodynamic modeling to identify additional candidate materials. Scale-up studies from milliliters to liters are planned to assess commercial viability. The technology is not yet deployed at industrial scale but is advancing through structured experimental validation.


About Renewcat Inc

Renewcat Inc is a materials science company focused on the sustainable upcycling of polyvinyl chloride (PVC) waste. The company has developed a proprietary catalytic process designed to transform waste PVC streams into high-value hydrocarbon products, specifically polyethylene waxes, while simultaneously recovering chloride for reuse in PVC manufacturing. The technology centers on chemical processes involving dechlorination and catalytic hydrogenation to convert materials that are typically deemed unrecyclable into marketable commodities for industries such as construction, adhesives, and PVC production. By providing a circular path for a problematic waste stream, the company aims to reduce environmental impact and greenhouse gas emissions associated with end-of-life PVC management.

This technology addresses significant gaps in current recycling infrastructure, offering a viable economic pathway for managing plastic waste that otherwise ends up in landfills. The company, co-founded by Dr. Scott Svadlenak and Dr. Konstantinos Goulas, originated from research conducted at Oregon State University and is currently engaged in prototyping, process modeling, and R&D focused on scaling its catalyst performance and separation techniques. Renewcat has been supported by organizations such as the U.S. Department of Energy’s Chain Reaction Innovations program at Argonne National Laboratory, reflecting its role as an emerging startup within the green technology and chemical recycling sectors.

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