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ISSN Approved Journal | | IMPACT FACTOR 8.16 | | eISSN: 2582-5542 | |  Free Crossref DOI 

Fast Publication within 2 days | | Low Article Processing Charges | | Peer Reviewed and Referred Journal

Research and review articles are invited for publication in September 2026 (Volume 27, Issue 3) Submit Paper

Next-Gen Magnetocaloric Cooling: MnFePSi Nanoparticles for Compact and Sustainable MCHP Systems

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  • Next-Gen Magnetocaloric Cooling: MnFePSi Nanoparticles for Compact and Sustainable MCHP Systems

Shad Abdelmoumen Serroune 1, *, Ir. Khasani 2, Dr. Sandra Merrier 3, Stéphane Devilliers 4 and Tadeshi Ryushi 5

1 Head and Chief Scientist, NanoGEIOS Laboratory – Nanotechnology and Advanced Materials, Miami, Florida, USA.
2 Research Professor, Universitas Gadjah Mada (UGM), Yogyakarta, Special Region of Yogyakarta, Indonesia; Nanotechnology Consultant, Nanogeios Technologies, Miami, Florida, USA.
3 Director of Development, Kaigen Nanoparticles, USA; Integration Specialist, Nanogeios, Miami, Florida, USA.
4 Principal Scientist, Microscopy and Raman Spectroscopy, Nanogeios Laboratories, Miami, Florida, USA.
5 Senior Researcher, Nanogeios Japan, Tokyo, Japan; Lead Engineer for Liquid NanoCO₂ Integration and Nanofusion Deployment with GEIOS Technologies, Miami, Florida, USA.

Review Article
 
World Journal of Biology Pharmacy and Health Sciences, 2024, 20(02), 1065-1092.
Article DOI: 10.30574/wjbphs.2024.20.2.0908
DOI url: https://doi.org/10.30574/wjbphs.2024.20.2.0908

Received on 05 October 2024; revised on 22 November 2024; accepted on 25 November 2024

This study introduces a groundbreaking magnetocaloric heat pump (MCHP) system that replaces traditional rare earth-dependent fixed-bed regenerators with a MnFePSi nanoparticle slurry (50 nm, 10% vol.), achieving simultaneous refrigerant and heat transfer functions. Experimental evaluations under controlled conditions (23°C ±0.2°C, 10 K span) demonstrate a 14.6% improvement in coefficient of performance (COP), 33.4% higher specific power density, and 24.8% system mass reduction compared to conventional gadolinium-based systems. The slurry’s non-Newtonian rheology enables rapid thermal response (56.3% faster) and exceptional temperature uniformity (±0.8°C), while operating at frequencies up to 7.6 Hz.
Key innovations include a proprietary experimental platform integrating real-time spin-state monitoring, nano-Hall magnetic field mapping, and coupled CFD-ML modeling. Extended stability tests reveal minimal performance degradation (1.3% COP reduction over 48 hours) and negligible nanoparticle agglomeration (<2%). The complete elimination of rare earth elements reduces lifecycle environmental impact by 60%, addressing critical sustainability challenges in cooling technology.
These results establish the first practical demonstration of a rare-earth-free magnetocaloric cooling system with superior efficiency, scalability, and material utilization—setting a new benchmark for sustainable thermal management solutions. The technology’s compact design and enhanced heat transfer coefficients (22% improvement over fixed beds) position it as a transformative approach for next-generation refrigeration, air conditioning, and waste heat recovery applications.

Magnetocaloric Effect (MCE); Nanoparticle Slurry; MnFePSi Alloy; Rare Earth-Free Cooling; Magnetocaloric Heat Pump (MCHP); Thermal Management

https://wjbphs.com/sites/default/files/fulltext_pdf/WJBPHS-2024-0908.pdf

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Shad Abdelmoumen Serroune, Ir. Khasani, Dr. Sandra Merrier, Stéphane Devilliers and Tadeshi Ryushi. Next-Gen Magnetocaloric Cooling: MnFePSi Nanoparticles for Compact and Sustainable MCHP Systems. World Journal of Biology Pharmacy and Health Sciences, 2024, 20(02), 1065-1092. Article DOI: https://doi.org/10.30574/wjbphs.2024.20.2.0908 

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