Energy Production

Gereon (Binary Battery)

The Gereon Binary Battery is a next-generation autonomous power system that merges electricity generation and storage in a single unit.

Gereon (Binary Battery)

Technology brief

What this platform addresses

The Gereon Binary Battery is a next-generation autonomous power system that merges electricity generation and storage in a single unit.

In R&D (Experimental Stage)

The challenge

The problem this technology addresses

Off-grid power; emergency power; portable power. Scalable architecture covering small robotics through large industrial deployments.

ARBOK solution

How the ARBOK system creates value

The Gereon Binary Battery is a next-generation autonomous power system that merges electricity generation and storage in a single unit. It operates on electrochemical principles, using a graphene-based core that mediates ion flow between two electrolytic environments — acidic and alkaline. This creates a stable potential gradient and drives an electron flow, functioning like both a generator and a battery without moving parts, flammable elements, or toxic components. The battery is designed to deliver high energy density, near-zero losses, and long uninterrupted operation — up to 1,000 hours — before requiring recharge or material replenishment. It is suited for off-grid, emergency, and portable power applications, and offers a scalable architecture for both small robotics and large industrial deployments.

A graphene-based core mediates ion flow between an acidic and an alkaline electrolytic environment, creating a stable potential gradient that drives electron flow. The unit therefore acts simultaneously as generator and battery, with no moving parts, no flammable elements, and no toxic components. Cooling is passive by natural convection.

Market and application

Commercial opportunity

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CAPEX и OPEX по проекту не ведём — считаются под конкретную площадку.

Use cases

Where the technology can be applied

Off-grid power; emergency power; portable power. Scalable architecture covering small robotics through large industrial deployments.

Next stage: TRL 4 — lab validation with breadboard-scale prototype pending.

Graphene Composites · TEG-BETON · Compact Energy Modules · Mobile Power Units

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Overview

The Gereon Binary Battery is a next-generation autonomous power system that merges electricity generation and storage in a single unit. It operates on electrochemical principles, using a graphene-based core that mediates ion flow between two electrolytic environments — acidic and alkaline. This creates a stable potential gradient and drives an electron flow, functioning like both a generator and a battery without moving parts, flammable elements, or toxic components. The battery is designed to deliver high energy density, near-zero losses, and long uninterrupted operation — up to 1,000 hours — before requiring recharge or material replenishment. It is suited for off-grid, emergency, and portable power applications, and offers a scalable architecture for both small robotics and large industrial deployments.

Applications

Off-grid power; emergency power; portable power. Scalable architecture covering small robotics through large industrial deployments.

Operating Principle

A graphene-based core mediates ion flow between an acidic and an alkaline electrolytic environment, creating a stable potential gradient that drives electron flow. The unit therefore acts simultaneously as generator and battery, with no moving parts, no flammable elements, and no toxic components. Cooling is passive by natural convection.

Key Parameters

| Parameter | Value |

|---|---|

| Energy output | Up to 24 kWh/day |

| Energy density | Up to 3 kWh/L (≈192 Wh/kg) |

| Specific power | Up to 800 W/kg |

| Nominal power | 1–3 kW |

| Peak power | Up to 10 kW |

| Operating voltage | 48 V (range 44–52 V) |

| Max current | 208 A |

| Efficiency | >99% |

| Self-discharge | <1% per month |

| Operating time | Up to 1,000 hours continuous |

| Switching time | <1 second |

| Weight | 12.5 kg |

| Volume | 12 L |

| Cooling | Passive (natural convection) |

| Operating temperature range | –20 °C to +60 °C |

| Noise level | <25 dB |

| Safety profile | 100% safe (no emissions, flammable or toxic materials) |

Architecture and Components

Graphene-based core separating and mediating ion flow between acidic and alkaline electrolyte chambers; passive natural-convection cooling; no moving parts. Total mass 12.5 kg in a 12 L volume.

Advantages

Merges generation and storage in a single unit. Efficiency above 99% with self-discharge below 1% per month. Up to 1,000 hours of continuous operation before recharge or material replenishment. No moving parts, no flammable elements, no toxic components — a 100% safe profile with no emissions. Passive cooling and near-silent operation below 25 dB. Wide operating temperature range from –20 °C to +60 °C. Switching time under 1 second. Scalable from small robotics to large industrial deployments.

Integrations

Graphene Composites · TEG-BETON · Compact Energy Modules · Mobile Power Units

Deployment & Operation

Next stage: TRL 4 — lab validation with breadboard-scale prototype pending.

TRL

TRL 3 — Experimental proof of concept completed. Next stage: TRL 4 — lab validation with breadboard-scale prototype pending.

Market Potential

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Typical Project Economics

CAPEX и OPEX по проекту не ведём — считаются под конкретную площадку.

Risk Factors

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Related Technologies

Graphene Composites · TEG-BETON · Compact Energy Modules · Mobile Power Units

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Partnership pathway

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