EPC Energy Technology
Electro Power Cell / Power The Future


Provides system engineering solutions for green hydrogen, CO₂ utilization & Power-to-X



Catalysis Capabilities


In the e-fuels value chain, catalysts determine not only whether reactions occur but also reaction pathways, product distribution, and energy efficiency. They are the foundation of CO₂ conversion and fuel synthesis.

EPC focuses on systematic selection and optimization of catalytic systems for CO₂ hydrogenation, CO₂ electroreduction, and syngas conversion. We balance reaction activity, product selectivity, and operational stability across different fuel routes including green methanol, methane, and SAF. Each pathway is matched with appropriate catalyst systems and reaction conditions to ensure technical feasibility and engineering compatibility.

In application, we look beyond lab-scale performance to real-world behavior including gas composition fluctuations, temperature and pressure variations, and long-term stability. Through coordinated design with reactor structures and process conditions, catalytic performance is maintained during continuous operation and scale-up.

EPC emphasizes the coupling optimization between catalytic systems and engineering processes, transforming catalysts from lab-scale performance indicators into system-level operational capabilities. This provides reliable support for the industrial deployment of green fuels.

Catalyst-to-Pathway Matching Capability


Catalytic systems are selected and optimized based on the target fuel synthesis route, balancing efficiency and selectivity for each specific pathway.

Long-Term Operational Stability Design


Catalyst degradation and durability under continuous operation are critical considerations. Our designs ensure long-term performance and engineering viability.

Engineering Capabilities


The realization of e-fuels depends not only on catalysis itself, but on the stability and scalability of the reaction system under continuous operation. This is essentially an engineering transition from "reaction feasibility" to "system operability."


EPC takes a holistic approach to CO₂ conversion and fuel synthesis, optimizing reactor design, gas distribution, mass transfer, thermal management, and process control to ensure stable performance at engineering scale. Through precise control of fluid distribution, residence time, and reaction conditions, we balance reaction efficiency, energy consumption, and system stability.


Engineering design also considers equipment fabrication, modular integration, and field deployment from the outset, enabling a smooth transition from lab validation to demonstration and commercial-scale projects. Our focus is not only on point efficiency but on system reliability, stability, and deliverability under real-world operating conditions.

Lab-to-Scale-Up Translation Capability


Enabling stable catalytic performance under continuous operation and scalable conditions.

Skid-Mounted Modular Engineering Capability


Bypassing traditional site-based construction and permitting processes, our systems are factory-fabricated and assembled, then rapidly deployed on-site. This approach delivers faster execution, lower costs, and greater efficiency.

Electro Power Cell Energy Technology
(Shanghai) CO., Ltd
Contact us:
✉️   fern@electropowercell.com
         
             +86 181 1735 8642

Address:Building 6, Caohejing Science and Technology Oasis,
                Yaobei Road, Songjiang District, Shanghai, China