Skip to main navigation Skip to search Skip to main content

Techno-Economic Analysis of Recycling Strategies for Catalyst and Acid During Catalytic Graphitization: Article No. 105414

  • Jose Gonzalez-Aguirre
  • , Md. Nazrul Islam
  • , Abhijit Dutta
  • , William Sagues
  • , Steven Rowland
  • , Sunkyu Park
  • North Carolina State University

Research output: Contribution to journalArticlepeer-review

Abstract

With the aim of meeting the urgent demand for active anode materials (AAM) in energy storage systems, bio-based graphite (biographite) emerges as an affordable solution to de-risk the turbulent supply chain of critical minerals. Anode grade biographite requires high crystallinity and purity, which can be achieved by catalytic graphitization with iron, followed by acid washing. Therefore, a well-conceived process integration that recycles catalyst can be the starting point to commercialization. This study evaluates closed-loop catalyst recovery, and byproducts valorization scenarios through a technoeconomic framework to help understand the scale-up potential of biographite. For the acid washing, three reactors in series meet the required biographite purity at 99.95%. Iron and acid recovery can reduce material consumption and waste generation by ~95%, albeit at the expense of ~80% increase in capital costs. Recovery scenarios present similar capital and operational expenses, yielding minimum selling prices (MSP) near $6 kg-1 of biographite. Monte Carlo methodology reveals that feedstock price accounts for ~60% of MSP variance, followed by plant capacity ~20%. The likelihood of reaching a competitive profit margin of 30% in the U.S. AAM market sits at 85% average for recovery scenarios, and 103% when iron oxide is sold as byproduct. Additionally, an IRR >= 15% can be achieved for half of Monte Carlo simulations, representing promising early-stage results. Biographite production offers a strategic pathway to stabilize the anode market beyond China by integrating established technologies for a scalable, economically viable, and sustainable process. The role of catalyst recovery and byproducts utilization is critical for advancing the biomaterials industry.
Original languageAmerican English
Number of pages15
JournalEnergy Storage Materials
Volume90
DOIs
StatePublished - 2026

NLR Publication Number

  • NLR/JA-5100-99180

Keywords

  • acid washing optimization
  • bio-based graphite
  • closed-loop catalyst recycling
  • Monte Carlo simulation
  • sustainable anode materials
  • techno-economic analysis

Fingerprint

Dive into the research topics of 'Techno-Economic Analysis of Recycling Strategies for Catalyst and Acid During Catalytic Graphitization: Article No. 105414'. Together they form a unique fingerprint.

Cite this