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April 19, 2026SHILAP Revista de lepidopterología0 citationsOpen Access

A 98.8%-efficiency, thermally-optimized 48 V-to-12 V DC–DC converter for high-power data centers

ZZZiqian Zhang

Key Points

  • The research aims to design a highly efficient DC–DC converter for critical power delivery in data centers.
  • Designed a 48 V-to-12 V DC–DC converter using resonant switched-capacitor topology.
  • Implemented zero-current switching (ZCS) control to enhance performance.
  • Optimized PCB stack-up and via structures for better thermal management.
  • Conducted a comparative study of substrate designs for efficiency improvements.
  • Validated experimental results under a full-load condition of 70 A.
  • Achieved a peak efficiency of 98.8% and full-load efficiency of 96.1%.
  • Improved conversion efficiency by 1.5% with optimized multilayer PCB design.
  • Reduced temperature rise of key power devices by 9.6 °C during operation.
  • Maintained excellent electrical characteristics and thermal stability across various loads.
  • Met modern data center requirements for efficiency, power density, and reliability.

Abstract

This work presents the design of a 48 V-to-12 V high-power DC–DC converter based on a resonant switched-capacitor topology. By employing zero-current switching (ZCS) control, the prototype achieves a peak efficiency of 98.8% and a full-load efficiency of 96.1% under a 70 A load condition. To address the stringent power delivery requirements in data center high-performance computing (HPC) applications, particular emphasis is placed on optimizing PCB stack-up and via structures. A comparative study of different substrate designs demonstrates that an optimized multilayer PCB architecture improves the conversion efficiency by an additional 1.5%, while reducing the temperature rise of key power devices by 9.6 °C. Experimental validation confirms that the proposed design not only achieves ultra-high conversion efficiency but also significantly enhances thermal performance. The converter consistently maintains excellent electrical characteristics and thermal stability across a wide load range, meeting the requirements of modern data center power systems for high efficiency, high power density, and high reliability.

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Cite This Study

Ziqian Zhang (2026) studied this question.

synapsesocial.com/papers/69e4702d010ef96374d8d702https://doi.org/10.3389/felec.2026.1697781
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