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Colossal Magnetoresistance without Mixed Valence in a Layered Phosphide Crystal

Authors :
Kemal Atay
Daniel Haskel
Xiaohan Yao
Philip Ryan
Jared D. Rogers
Zhi-Cheng Wang
Ilya Sochnikov
Jacob Franklin
Fazel Tafti
Renee Nichols
Bochao Xu
Source :
Advanced Materials. 33:2005755
Publication Year :
2021
Publisher :
Wiley, 2021.

Abstract

Materials with strong magnetoresistive responses are the backbone of spintronic technology, magnetic sensors, and hard drives. Among them, manganese oxides with a mixed valence and a cubic perovskite structure stand out due to their colossal magnetoresistance (CMR). A double exchange interaction underlies the CMR in manganates, whereby charge transport is enhanced when the spins on neighboring Mn3+ and Mn4+ ions are parallel. Prior efforts to find different materials or mechanisms for CMR resulted in a much smaller effect. Here we show an enormous CMR at low temperatures in EuCd2P2 without manganese, oxygen, mixed valence, or cubic perovskite structure. EuCd2P2 has a layered trigonal lattice and exhibits antiferromagnetic ordering at 11 K. The magnitude of CMR (104 percent) in as-grown crystals of EuCd2P2 rivals the magnitude in optimized thin films of manganates. Our magnetization, transport, and synchrotron X-ray data suggest that strong magnetic fluctuations are responsible for this phenomenon. The realization of CMR at low temperatures without heterovalency leads to a new regime for materials and technologies related to antiferromagnetic spintronics.

Details

ISSN :
15214095 and 09359648
Volume :
33
Database :
OpenAIRE
Journal :
Advanced Materials
Accession number :
edsair.doi.dedup.....ec8f7cca8aa82df50742e20311d3c918