H2Pro develops a decoupled, membraneless electrolysis method for green hydrogen production, significantly reducing costs and enhancing operational flexibility. This technology addresses the need for affordable, scalable green hydrogen to support renewable energy integration and achieve net-zero emissions.
Funding
$107M raised to dateRaised to date based on public sources. This may differ from the amount the company actually raised and is based only on what is publicly available on the internet.




Founders
Product
Problem
Existing green hydrogen production methods, particularly traditional electrolysis, face challenges in terms of cost, efficiency, and compatibility with intermittent renewable energy sources. The need for expensive membranes and the risk of gas mixing limit scalability and operational flexibility.
Solution
H2Pro offers a decoupled, membraneless electrolysis technology that significantly reduces the cost of green hydrogen production while enhancing operational flexibility. By separating hydrogen and oxygen generation into distinct phases, the technology eliminates the need for a membrane, reduces the risk of gas mixing, and enables more efficient and responsive operation. This approach allows for better integration with renewable energy sources due to its ability to quickly ramp up and down, making it a more economically viable and safer solution for large-scale green hydrogen production.
Target Audience
The primary target audience includes companies and organizations involved in renewable energy, hydrogen production, industrial processes, and transportation sectors seeking affordable and scalable green hydrogen solutions.
Features
- Decoupled electrolysis process separating hydrogen and oxygen generation
- Membraneless design eliminating the need for expensive membranes
- Cost-effective electrodes contributing to lower levelized cost of hydrogen (LCOH)
- High system efficiency maximizing hydrogen output per unit of energy input
- Highly responsive operation enabling quick ramp-up and ramp-down capabilities
- Safer design minimizing the risk of hydrogen and oxygen gas mixing