Issue 10, 2023

Scrolling reduced graphene oxides to induce room temperature magnetism via spatial coupling of defects

Abstract

Due to its intriguing features and numerous applications, graphene has garnered a lot of interest in recent years. However, it is still very difficult to create graphene-based room-temperature magnets without transition metals or rare earth elements since pristine graphene is inherently diamagnetic due to the delocalized π bonding network. Herein, room-temperature ferromagnetism with a saturation magnetization of 0.93 emu g−1 (300 K) is achieved in defect-rich-reduced graphene oxide (DR-rGO) nanoscrolls by creating a spatial coupling of defects. The experiments and DFT calculations verify that spatial coupling of defects could enhance Rudermann–Kittel–Kasuya–Yosida interactions to induce magnetism in graphene. It displays high-efficiency electromagnetic wave absorption performance with a minimal reflection loss of −62.1 dB and an effective absorption bandwidth of 7.8 GHz (3.0 mm) thanks to greatly improved magnetism. This breakthrough serves as a building block for the creation of room-temperature magnetic carbon materials and expands their applications in many pertinent domains.

Graphical abstract: Scrolling reduced graphene oxides to induce room temperature magnetism via spatial coupling of defects

Supplementary files

Article information

Article type
Communication
Submitted
13 May 2023
Accepted
06 Jul 2023
First published
07 Jul 2023

Mater. Horiz., 2023,10, 4344-4353

Scrolling reduced graphene oxides to induce room temperature magnetism via spatial coupling of defects

T. Shi, Y. Yao, Y. Hong, Y. Li, S. Lu, W. Qin and X. Wu, Mater. Horiz., 2023, 10, 4344 DOI: 10.1039/D3MH00734K

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