Enhancement of multiferrocity in CuCrO2 compounds through effective doping induced optimization of localized carrier holes and reduction in helical disorder

IF 2.8 3区 物理与天体物理 Q2 PHYSICS, CONDENSED MATTER Physica B-condensed Matter Pub Date : 2024-09-20 DOI:10.1016/j.physb.2024.416559
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Abstract

The bulk pristine CuCrO2, doped CuCr0.96M0.03V0.01O2 (M = Ti, Mn, Ga and Nb), CuCr0.96V0.04O2, CuCr0.97Mg0.03O2, CuCr0.97Ni0.03O2, and CuCr1-xFexO2 (x = 0.03, 0.06, and 0.09) compounds with single rhombohedral phase were investigated through low-temperature dc resistivity, field-dependent magnetization, and dielectric measurements. The room-temperature UV measurements were also carried out to determine possible changes in the optical bandgap due to the dopants mentioned above. The present work provides significant evidence of novel methodology for optimizing the number of localized carrier holes along with a reduction in helical disorder around MO6 octahedra, which leads to enhancement of the double exchange along the Cr-O-M-O linkages or superexchange between M3+/4+-Cr3+ mediated via oxygen. The nonmagnetic substitution in magnetic sublattice disrupts the spin spiral and a net weak component is realized in magnetization measurements.

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通过有效掺杂优化局部载流子空穴并减少螺旋无序,增强 CuCrO2 化合物的多铁性
通过低温直流电阻率、磁场相关磁化和介电测量,研究了原始块状 CuCrO2、掺杂 CuCr0.96M0.03V0.01O2(M = Ti、Mn、Ga 和 Nb)、CuCr0.96V0.04O2、CuCr0.97Mg0.03O2、CuCr0.97Ni0.03O2 和 CuCr1-xFexO2(x = 0.03、0.06和0.09)化合物进行了低温直流电阻率、磁场相关磁化和介电测量。此外,还进行了室温紫外测量,以确定上述掺杂剂可能导致的光带隙变化。本研究工作提供了优化局部载流子空穴数量的新方法的重要证据,同时减少了 MO6 八面体周围的螺旋无序性,从而增强了沿 Cr-O-M-O 链接的双交换或通过氧介导的 M3+/4+-Cr3+ 之间的超交换。磁性亚晶格中的非磁性替代扰乱了自旋螺旋,在磁化测量中出现了净弱分量。
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来源期刊
Physica B-condensed Matter
Physica B-condensed Matter 物理-物理:凝聚态物理
CiteScore
4.90
自引率
7.10%
发文量
703
审稿时长
44 days
期刊介绍: Physica B: Condensed Matter comprises all condensed matter and material physics that involve theoretical, computational and experimental work. Papers should contain further developments and a proper discussion on the physics of experimental or theoretical results in one of the following areas: -Magnetism -Materials physics -Nanostructures and nanomaterials -Optics and optical materials -Quantum materials -Semiconductors -Strongly correlated systems -Superconductivity -Surfaces and interfaces
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