跳至主導覽 跳至搜尋 跳過主要內容

Hydrogen-modulated magnetism in palladium-based nanostructures for sensing and reversible control of spintronic devices

  • Gayathree Mohan
  • , Neleena Nair Gopakumar
  • , Ming Hsien Hsu
  • , Yan Ru Chu
  • , Wen Chin Lin*
  • *此作品的通信作者

研究成果: 雜誌貢獻回顧評介論文同行評審

摘要

Hydrogen plays a pivotal role in the transition to renewable energy, driving the need for advanced sensing and storage technologies. Beyond its chemical reactivity, hydrogen directly modulates magnetic behavior in nanostructured materials, offering a unique avenue for multifunctional device design. Palladium-based magnetic nanostructures, particularly those incorporating cobalt, have emerged as promising platforms for hydrogen detection in spintronic applications. This review elucidates how hydrogen absorption—via palladium hydriding and Co-Pd hybridization-alters electronic structure and magnetic interactions at the nanoscale. We detail the hydrogen-induced modulation of key magnetic properties, including the Magneto-Optical Kerr Effect, coercivity, remanence, spin reorientation transitions, interlayer coupling, exchange bias, and magnetoresistance. These changes are driven by hydrogen-mediated shifts in magnetic anisotropy (MA) energy and spin texture, which are amplified in engineered nanostructures. Such materials not only enable precise monitoring of hydrogen diffusion but also serve as tunable platforms for probing perpendicular MA. By establishing a direct correlation between hydrogenation and magnetic response, this review identifies new strategies for designing hydrogen-sensitive spintronic devices. These insights pave the way for integrating hydrogen-responsive magnetic materials into next-generation technologies for clean energy, intelligent sensing, and spin-based information processing.

原文英語
文章編號042003
期刊JPhys Materials
8
發行號4
DOIs
出版狀態已發佈 - 2025 10月 1

UN SDG

此研究成果有助於以下永續發展目標

  1. SDG 7 - 可負擔的潔淨能源
    SDG 7 可負擔的潔淨能源

ASJC Scopus subject areas

  • 原子與分子物理與光學
  • 一般材料科學
  • 凝聚態物理學

指紋

深入研究「Hydrogen-modulated magnetism in palladium-based nanostructures for sensing and reversible control of spintronic devices」主題。共同形成了獨特的指紋。

引用此