Self sustainable Conversion of Plastic Waste to Carbon Nanomaterials
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Technology Overview
This invention converts plastic waste into high value carbon nanomaterials using a low-energy, self sustaining catalytic process with minimal emissions. It enables scalable production for applications in electronics, batteries, and energy storage.
CATEGORY
TECHNOLOGY READINESS LEVEL (TRL)
Sustainable Materials & Waste‑to‑Value Technology
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On-Site Plastic Waste Valorisation:
Converts marine plastic waste into high-value carbon nanomaterials, reducing disposal logistics and costs for ports and offshore facilities.
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Low-Energy, Self-Sustaining Process:
Operates with minimal external energy input and low greenhouse gas emissions — well suited for vessels and remote offshore installations.
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Supports Environmental Compliance & Environmental, Social, and Governance Goals:
Transforms plastic waste into valuable materials, aligning with maritime decarbonisation and circular economy objectives.
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New Revenue Opportunities:
Carbon nanomaterials have broad applications (e.g., electronics, composites, coatings), enabling potential new value streams for maritime stakeholders.
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Reduced Waste Management Footprint:
Produces significantly lower emissions than conventional plastic treatment methods, supporting greener maritime operations.
Maritime Use Cases

This technology converts ocean-recovered plastic waste into high-value carbon nanomaterials, supporting circular economy initiatives and helping reduce environmental pollution in the maritime sector.

The resulting nanomaterials can be used in battery electrodes to enhance energy storage for hybrid and fully electric vessels. They can also be incorporated into lightweight, high-strength composite materials for ship construction, reducing vessel weight and improving fuel efficiency.
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