Yttrium Oxide‐Mediated Interfacial Pinning in C@CoNi Composites for Ultra‐Broadband Microwave Absorption and Durable Tribological Performance

ABSTRACT The increasingly complex electromagnetic environment has imposed higher requirements on the electromagnetic protection capability and surface wear resistance of electronic packaging materials. In this work, different Y 2 O 3 contents were introduced to regulate the growth of CoNi, leading to progressive grain refinement and pronounced changes in its surface morphology. The resulting variations in electromagnetic response and microwave absorption performance were then systematically investigated. On this basis, a UV‐curable resin‐based C@CoNi‐Y composite packaging system was further constructed. With increasing Y 2 O 3 content, the CoNi grains are progressively refined, while their growth morphology on the carbon surface gradually evolves, accompanied by changes in the CoNi/Y 2 O 3 heterointerfaces and local structure. As a result, the optimized C@CoNi‐Y3 achieves a minimum reflection loss ( RL min ) of −74.22 dB at 1.72 mm and an maximum effective absorption bandwidth ( EAB max ) of 9.23 GHz at 1.56 mm. When incorporated into UV‐curable resin, the 9 wt.% C@CoNi‐Y composite film exhibits the lowest average friction coefficient of 0.16, 56.8% lower than that of neat resin. This work demonstrates that interfacial regulation mediated by Y 2 O 3 provides an effective strategy for modulating magnetic resonance behavior, optimizing impedance matching, and achieving broadband microwave absorption in rare‐earth‐modified absorbers.

Authors

Institutions

Publication Details

Journal
Small
Published
2026-09-29
DOI
https://doi.org/10.1002/smll.75982
Primary Topic
Electromagnetic wave absorption materials
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Yttrium Oxide‐Mediated Interfacial Pinning in C@CoNi Composites for Ultra‐Broadband Microwave Absorption and Durable Tribological Performance

Zhongyang Duan, Keming Jia, Tai Peng, Zhengqiang Yin et al.
Small
Electromagnetic wave absorption materials
article

Yttrium Oxide‐Mediated Interfacial Pinning in C@CoNi Composites for Ultra‐Broadband Microwave Absorption and Durable Tribological Performance

Zhongyang Duan, Keming Jia, Tai Peng, Zhengqiang Yin, Yufeng Bai, Yu Zhang
article en

Abstract

ABSTRACT The increasingly complex electromagnetic environment has imposed higher requirements on the electromagnetic protection capability and surface wear resistance of electronic packaging materials. In this work, different Y 2 O 3 contents were introduced to regulate the growth of CoNi, leading to progressive grain refinement and pronounced changes in its surface morphology. The resulting variations in electromagnetic response and microwave absorption performance were then systematically investigated. On this basis, a UV‐curable resin‐based C@CoNi‐Y composite packaging system was further constructed. With increasing Y 2 O 3 content, the CoNi grains are progressively refined, while their growth morphology on the carbon surface gradually evolves, accompanied by changes in the CoNi/Y 2 O 3 heterointerfaces and local structure. As a result, the optimized C@CoNi‐Y3 achieves a minimum reflection loss ( RL min ) of −74.22 dB at 1.72 mm and an maximum effective absorption bandwidth ( EAB max ) of 9.23 GHz at 1.56 mm. When incorporated into UV‐curable resin, the 9 wt.% C@CoNi‐Y composite film exhibits the lowest average friction coefficient of 0.16, 56.8% lower than that of neat resin. This work demonstrates that interfacial regulation mediated by Y 2 O 3 provides an effective strategy for modulating magnetic resonance behavior, optimizing impedance matching, and achieving broadband microwave absorption in rare‐earth‐modified absorbers.

Small
Jiamusi University (CN), Heilongjiang Academy of Agricultural Machinery Engineering (CN)
Openalex Percentile: Top 30%
Electromagnetic wave absorption materials
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.

Yttrium Oxide‐Mediated Interfacial Pinning in C@CoNi Composites for Ultra‐Broadband Microwave Absorption and Durable Tribological Performance — Zhongyang Duan, Keming Jia, et al. · Small (2026) | TGRS Research Map | TGRS