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XMEM

XMEM develops advanced carbon molecular sieve membranes for gas separation and sustainable fuel production. Their technology addresses challenges in carbon capture, hydrogen purification, biogas upgrading, and bio-e-fuel production, enabling industries to reduce emissions and optimize resource efficiency. These membranes are designed for extreme chemical stability and tunable properties, offering scalable solutions for hard-to-abate sectors.

Updated 2 months ago

Funding

Funding not disclosed

Funding rounds are not available yet.

Founders

Product

Problem

Many industrial processes, such as carbon capture, hydrogen purification, and biogas upgrading, require efficient and cost-effective gas separation techniques to reduce emissions and improve resource utilization. Traditional gas separation methods often suffer from limitations in terms of energy consumption, scalability, and chemical stability.

Solution

XMEM develops advanced carbon molecular sieve (CMS) membranes designed to overcome the limitations of conventional gas separation technologies. These membranes offer tunable properties and extreme chemical stability, enabling efficient and selective separation of gases in harsh industrial environments. XMEM's technology facilitates carbon capture, hydrogen purification, biogas upgrading, and bio-e-fuel production, helping industries reduce their environmental impact and optimize resource efficiency. The membranes are designed for scalable deployment, providing a pathway to sustainable fuel production and reduced emissions in hard-to-abate sectors.

Target Audience

XMEM's primary customers are companies in industries such as carbon capture, hydrogen production, biogas upgrading, and bio-e-fuel production seeking advanced gas separation solutions.

Features

  • Carbon molecular sieve membranes with tunable properties for specific gas separation applications
  • High chemical stability for use in extreme industrial environments
  • Scalable manufacturing process for cost-effective deployment
  • Enhanced selectivity for efficient gas separation
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