PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 5, 2026International Journal on Interactive Design and Manufacturing (IJIDeM)0 citationsOpen Access

Multi-objective optimization of stereolithography-pressureless sintering for fabrication of hierarchical porous current collector for lithium batteries

AMAparajita MishraMSMukul Shukla

Key Points

  • The study aims to optimize the fabrication of porous copper current collectors for lithium batteries using advanced 3D printing techniques.
  • Employs stereolithography combined with pressureless sintering for fabrication.
  • Uses Response Surface Methodology with a Box–Behnken design for optimizing parameters.
  • Conducts multi-objective genetic algorithm analysis in MATLAB.
  • Achieves significant improvements in relative density and compressive yield strength.
  • Porous current collectors withstand compression of ~35 MPa at 60% strain.
  • Demonstrates a Coulombic efficiency of approximately 95% over 100 cycles, outperforming conventional methods.

Abstract

Abstract The growing demand for efficient energy storage systems in applications such as electric vehicles, smart grids, and portable electronics has intensified interest in high-performance lithium–metal batteries. Conventional fabrication routes for porous copper current collectors (CCs) face limitations in achieving complex architectures and reliable mechanical stability. In this work, stereolithography-based 3D printing combined with pressureless sintering is employed for the rapid fabrication of copper CCs. For the first time, porous copper CCs are fabricated using this approach, delivering controlled architectures with enhanced structural robustness and electrochemical functionality. Optimization of sintering parameters, including sintering temperature, heating rate, and holding time, was carried out using Response Surface Methodology based on a Box–Behnken design, followed by multi-objective genetic algorithm analysis in MATLAB. The optimized conditions significantly improved relative density, compressive yield strength, and volumetric shrinkage, while minimizing experimental effort. The fabricated porous copper CC exhibited superior mechanical strength under compression, withstanding ~ 35 MPa at 60% strain, ensuring integrity during coin cell assembly and cycling. Electrochemical testing demonstrated a stable and high Coulombic efficiency of approximately 95 percent over 100 cycles, significantly outperforming conventional copper foil. The porous structure effectively facilitated uniform lithium deposition, mitigated dendrite growth, and accommodated volume fluctuations. This research offers a scalable route to fabricate durable, high-performance CCs, advancing next-generation electrochemical systems with stable, high-surface-area electrodes. Graphical Abstract

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Mishra et al. (2026) studied this question.

synapsesocial.com/papers/69a91dedd6127c7a504c1490https://doi.org/10.1007/s12008-026-02530-8
Ask AI
Helpful
Bookmark
Share
View Full Paper