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I-Corps: Translation Potential of Extreme Textiles

Project: Research

Abstract & Details

Description

Award ID: 2429097

The broader impact of this I-Corps project is based on the development of a nanomaterial assembly technology for enhancing the functionality of polymers and textiles. This innovative approach addresses a critical need for sustainable and non-toxic methods in the textile industry. By enabling advanced features such as fire retardancy, antimicrobial properties, and health monitoring capabilities without compromising the mechanical strength of textiles, this technology can significantly impact various sectors, including healthcare, environmental monitoring, and consumer goods. The potential applications range from smart textiles in wearable technology, eco-friendly industrial materials, and flexible electronics to meet the growing demand for sustainable and high-performance products. This technology could also reduce environmental pollution and health risks associated with traditional textile treatments, fostering a safer and more sustainable industry. This I-Corps project utilizes experiential learning coupled with a first-hand investigation of the industry ecosystem to assess the translation potential of the technology. The solution is based on the development of an eco-friendly nanomaterial assembly technology for precise and durable functionalization of polymer substrates and textiles. The technology utilizes a water-based, non-destructive process to deposit nanomaterials onto hydrophobic and chemically inert surfaces, ensuring the retention of the substrates or textile's inherent properties. Thus far, research has demonstrated the technology's effectiveness in adding multiple functionalities to textiles while maintaining their strength and flexibility. Technical results have shown successful applications in various textile types, paving the way for scalable and commercially viable production methods. The project aims to validate the market potential of this technology through extensive customer discovery and develop a robust business model to bring this innovative solution to market. This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.

NSF Program Director: Ruth Shuman
StatusActive
Effective start/end date07/01/2401/31/27

Funding

  • I-Corps Teams: $50,000.00

Active Fiscal Year

  • FY2024
  • FY2027
  • FY2026
  • FY2025

Start Fiscal Year

  • FY2024

TIP Programs

  • I-Corps Teams

Key Technology Areas

  • Advanced Materials
  • (confidence score: 100%)
  • Robotics and Advanced Manufacturing
  • (confidence score: 98%)

Technology Foci

  • Advanced Manufacturing (excluding biomanufacturing and semiconductor manufacturing)
  • (confidence score: 96%)
  • Automation
  • (confidence score: 86%)
  • Composites (excluding 2D materials)
  • (confidence score: 98%)
  • 2D materials
  • (confidence score: 83%)
  • Other next-generation materials
  • (confidence score: 99%)

Congressional District at Award

  • District n. 05 of Pennsylvania

Current Congressional District

  • District n. 05 of Pennsylvania

United States

  • Pennsylvania

Core Based Statistical Area (CBSA)

  • Philadelphia-Camden-Wilmington, PA-NJ-DE-MD

County

  • County: Delaware, PA

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