May 2026

Journal

Cradle-to-gate life cycle assessment of advanced composite panels incorporating CO2-derived multi-walled carbon nanotubes and hemp fiber for sustainable building applications

By:
Jo, Eonyeon ; Stegman, Bryant S; Bobo, Cameron W; Wasti, Sanjita ; Fono tamo, Romeo; Douglas, Anna E; Ghossein, Hicham K; Marathe, Umesh N; Vaidya, Uday K
Journal Name:
Journal of Building Engineering
Page Number:
116279
Volume:
126
Publication Date:
May 26, 2026
View DOI Listing:
https://doi.org/10.1016/j.jobe.2026.116279

Abstract

Advanced composite panels represent a promising pathway to reducing carbon emissions in the construction industry, yet comprehensive environmental impact assessments remain limited. In this study, we conduct a life cycle assessment (LCA) to evaluate the environmental impacts of innovative composite panels produced from multi-walled carbon nanotubes (MWCNTs), hemp fiber (HF), recycled carbon fiber (rCF), and recycled polypropylene (PP), exploring their potential as baseline structural equivalents to conventional gypsum board. MWCNTs and HF play a critical role in sequestering carbon during raw material production, while the recycling processes for CF and PP generally require less energy compared to virgin material production. The LCA evaluates environmental performance using the TRACI 2.1 method, covering global warming potential (GWP), ozone depletion, smog formation, acidification, eutrophication, carcinogenic and non-carcinogenic effects, respiratory impacts, ecotoxicity, and fossil fuel depletion. Compositional variations—resin type (virgin vs. recycled), rCF content (9–29 wt%), and HF content (10–30 wt%)—are introduced for sensitivity and hotspot analyses. Results demonstrate that, when compared on the basis of preliminary structural equivalence, increasing recycled PP, rCF, and HF content can significantly reduce global warming potential compared to gypsum board. Beyond carbon reduction, the composite panels show trade-offs across other environmental categories. With the growing demand for composite materials in interior panels, ceiling systems, and exterior claddings, these findings highlight the environmental benefits and potential trade-offs of the proposed composites, establishing a foundational framework to support their continued development toward full building-system integration.