Exploring new members of magnetoelectric materials in CuO–CuCl2–SeO2 system

IF 10 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Today Physics Pub Date : 2024-08-01 DOI:10.1016/j.mtphys.2024.101527
D. Chandrasekhar Kakarla , Yuan-Han Ku , H.C. Wu , C.C. Chen , M.Y. Hsu , T.R. Hu , J.-Y. Lin , Nidhi Puri , M.-J. Hsieh , C.W. Wang , W.-H. Li , Dhanasekhar C , A. Tiwari , C.H. Lu , K.J. You , T.W. Kuo , K.J. Fan , Y.C. Chang , H.D. Yang
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Abstract

Materials containing Cu2+ ions with quantum spin S = 1/2 and oxyhalide groups are an intriguing avenue for exploring quantum-magnetic phenomena. The CuO–CuCl2–SeO2 system has captured significant attention within the research community because of its potential to unveil new magnetic phases and their corresponding properties. Over the past decade, numerous researchers have investigated the unique physical properties of various compounds in this system and their structural correlations. In this study, we investigate the structural, magnetic, and magnetoelectric properties of three compounds: Cu3(SeO3)2Cl2, Cu5(SeO3)4Cl2, and Cu7O2(SeO3)2Cl6. The detailed magnetic and dielectric properties of Cu3(SeO3)2Cl2 indicate antiferromagnetic ordering at TN = 38 K with a dielectric anomaly independent of the magnetic origin, whereas Cu5(SeO3)4Cl2 shows finite magnetoelectric coupling near TN = 42 K. More importantly, we successfully synthesized the Nicksobolevite Cu7O2(SeO3)2Cl6 compound, which is a more complex structure, from the CuO–CuCl2–SeO2 system. Interestingly, Cu7O2(SeO3)2Cl6 and Cu2+ ions formed a spin-frustrated lattice with a cluster of corners sharing Cu2+ tetrahedra connected by eight Cu atoms running along the crystallographic b-axis. Complex magnetism with canted antiferromagnetic ordering at TN = 11 K was consistent with the finite hysteresis in the M-H curve, specific heat Cp, and dielectric anomaly, indicative of strong magnetoelectric coupling. Additionally, systematic changes in the magneto-dielectric behavior after magnetoelectric poling revealed resilient coupling between the magnetic and electric domains. Our study provides insights into the unique properties of these compounds and offers a detailed comparison with other multiferroic compounds in the CuO–CuCl2–SeO2 system.

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探索 CuO-CuCl2-SeO2 体系中磁电材料的新成员
含有量子自旋 S = 1/2 的铜离子和氧卤化物基团的材料是探索量子磁现象的一个有趣途径。CuO-CuCl-SeO 体系因其揭示新磁相及其相应特性的潜力而备受研究界关注。在过去的十年中,众多研究人员对该体系中各种化合物的独特物理性质及其结构相关性进行了研究。在本研究中,我们研究了三种化合物的结构、磁性和磁电特性:Cu(SeO)Cl、Cu(SeO)Cl 和 CuO(SeO)Cl。Cu(SeO)Cl 的详细磁性和介电性质表明,在 = 38 K 时存在反铁磁有序,介电异常与磁源无关,而 Cu(SeO)Cl 则在 = 42 K 附近显示出有限的磁电耦合。有趣的是,CuO(SeO)Cl 和铜离子形成了一个自旋受阻的晶格,由八个铜原子沿晶轴连接的共角铜四面体簇。在 = 11 K 时,具有倾斜反铁磁有序性的复杂磁性与 M- 曲线中的有限滞后、比热和介电异常相一致,表明存在很强的磁电耦合。此外,磁电极化后磁介电行为的系统性变化揭示了磁域和电域之间的弹性耦合。我们的研究深入揭示了这些化合物的独特性质,并与 CuO-CuCl-SeO 体系中的其他多铁性化合物进行了详细比较。
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来源期刊
Materials Today Physics
Materials Today Physics Materials Science-General Materials Science
CiteScore
14.00
自引率
7.80%
发文量
284
审稿时长
15 days
期刊介绍: Materials Today Physics is a multi-disciplinary journal focused on the physics of materials, encompassing both the physical properties and materials synthesis. Operating at the interface of physics and materials science, this journal covers one of the largest and most dynamic fields within physical science. The forefront research in materials physics is driving advancements in new materials, uncovering new physics, and fostering novel applications at an unprecedented pace.
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