This company develops proprietary, high-performance, and cost-effective cathode materials for lithium-based batteries, such as Lithium Iron Phosphate (LFP). Their advanced nano-materials enable economical battery cells with superior performance characteristics, including higher capacity retention and discharge rates. Integrals Power supports the transition to zero-carbon energy by accelerating the commercialization of state-of-the-art battery technology.
Funding
$710K 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
Current lithium-ion batteries face limitations in cost, power density, capacity retention, and safety, hindering the mass adoption of electric vehicles and renewable energy solutions. Many electric vehicle manufacturers are turning to Lithium Iron Phosphate (LFP) as an alternative cathode material, but existing LFP batteries suffer from inconsistent and low performance.
Solution
Integrals Power develops high-performance Lithium Iron Phosphate (LFP) and Lithium Iron Manganese Phosphate (LFMP) cathode materials using a proprietary bottom-up nano-material synthesis approach. This technology enhances battery performance by improving particle properties, resulting in higher capacity retention, increased discharge rates, and longer cycle life, even in extreme temperatures. Integrals Power's materials enable the production of more cost-effective and reliable batteries, facilitating the transition to zero-carbon energy applications. The company also offers battery test engineering solutions and nano-material scale-up services.
Target Audience
The primary target audience includes battery manufacturers, electric vehicle manufacturers, and companies in the renewable energy sector seeking high-performance, cost-effective, and safe battery cathode materials.
Features
- Bottom-up nano-material synthesis for precise control over cathode material structure
- Enhanced capacity retention, up to 30% higher on average and up to 300% higher in extreme temperatures compared to benchmarks
- High power density achieved through improved capacity and discharge rates
- Long cycle life due to minimized capacity loss at elevated temperatures and fast charge/discharge cycles
- Battery test engineering solutions for nano-materials and renewable energy sectors
- Nano-material scale-up services for project collaboration or contract manufacturing
- Development of novel battery cathode chemistries for various applications, including EV, aerospace, and off-grid energy storage