Liquid‐Metal‐Assisted Programmed Galvanic Engineering of Core–shell Nanohybrids for Microwave Absorption

Author:

Zhao Biao12,Du Yiqian1,Lv Hualiang3,Yan Zhikai4,Jian Hua4,Chen Guanyu1,Wu Yuyang1,Fan Bingbing5,Zhang Jincang6,Wu Limin7,Zhang David Wei2,Che Renchao126ORCID

Affiliation:

1. Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials Academy for Engineering & Technology Fudan University Shanghai 200438 China

2. School of Microelectronics Fudan University Shanghai 2000433 China

3. Institute of Optoelectronics Fudan University Shanghai 200433 China

4. Henan Key Laboratory of Aeronautical Materials and Application Technology School of Material Science and Engineering Zhengzhou University of Aeronautics Zhengzhou Henan 450046 China

5. School of Material Science and Engineering Zhengzhou University Zhengzhou Henan 450001 China

6. Zhejiang Laboratory Hangzhou 311100 China

7. Inner Mongolia University Hohhot 010021 China

Abstract

AbstractCore–shell nanostructures have received widespread attention because of their potential usage in various technological and scientific fields. However, they still face significant challenges in terms of fabrication of core–shell nanostructure libraries on a controlled, and even programmed scale. This study proposes a general approach to systematically fabricate core–shell nanohybrids using liquid‐metal Ga alloys as reconfigurable templates, and the initiation of a local galvanic replacement reaction is demonstrated utilizing an ultrasonic system. Under ultrasonic agitation, the hydrated gallium oxides generated on the liquid metal droplets, simultaneously delaminated themselves from the interfaces. Subsequently, single‐metal or bimetallic components are deposited on fresh smooth Ga‐based alloys via galvanic reactions to form unique core–shell metal/metal nanohybrids. Controlled and quantitative regulation of the diversity of the non‐homogeneous nanoparticle shell layer composition is achieved. The obtained core–shell nanostructures are used as efficient microwave absorbers to dissipate unwanted electromagnetic wave pollution. The effective absorption bands (90% absorption) of core–shell GaNi and GaCoNi nanohybrids are 3.92 and 3.8 GHz at a thickness of 1.4 mm, respectively. This general and advanced strategy enables the growth of other oxides or sulfides by spontaneous interfacial redox reactions for the fabrication of functional materials in the future.

Funder

National Natural Science Foundation of China

Program of Shanghai Academic Research Leader

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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