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非公度(CHNH)[Ni(HCOO)]杂化钙钛矿中的非典型磁行为。

Atypical Magnetic Behavior in the Incommensurate (CHNH)[Ni(HCOO)] Hybrid Perovskite.

作者信息

Pato-Doldán Breogán, Cañadillas-Delgado Laura, Gómez-Aguirre L Claudia, Señarís-Rodríguez M A, Sánchez-Andújar Manuel, Fabelo Óscar, Mira Jorge

机构信息

Department of Chemistry, Faculty of Sciences, Universidade da Coruña, 15071 A Coruña, Spain.

Institut Laue-Langevin, 6 Rue Jules Horowitz, BP 156, 38042 Grenoble, Cedex 9, France.

出版信息

J Phys Chem C Nanomater Interfaces. 2023 Feb 2;127(6):3330-3338. doi: 10.1021/acs.jpcc.2c08364. eCollection 2023 Feb 16.

Abstract

A plethora of temperature-induced phase transitions have been observed in (CHNH)[M(HCOO)] compounds, where M is Co(II) or Ni(II). Among them, the nickel compound exhibits a combination of magnetic and nuclear incommensurability below Néel temperature. Despite the fact that the zero-field behavior has been previously addressed, here we study in depth the macroscopic magnetic behavior of this compound to unveil the origin of the atypical magnetic response found in it and in its parent family of formate perovskites. In particular, they show a puzzling magnetization reversal in the curves measured starting from low temperatures, after cooling under zero field. The first atypical phenomenon is the impossibility of reaching zero magnetization, even by nullifying the applied external field and even compensating it for the influence of the Earth's magnetic field. Relatively large magnetic fields are needed to switch the magnetization from negative to positive values or vice versa, which is compatible with a soft ferromagnetic system. The atypical path found in its first magnetization curve and hysteresis loop at low temperatures is the most noticeable feature. The magnetization curve switches from more than 1200 Oe from the first magnetization loop to the subsequent magnetization loops. A feature that cannot be explained using a model based on unbalanced pair of domains. As a result, we decipher this behavior in light of the incommensurate structure of this material. We propose, in particular, that the applied magnetic field induces a magnetic phase transition from a magnetically incommensurate structure to a magnetically modulated collinear structure.

摘要

在(CHNH)[M(HCOO)]化合物中观察到了大量温度诱导的相变,其中M为Co(II)或Ni(II)。其中,镍化合物在奈尔温度以下表现出磁和核非 commensurability的组合。尽管零场行为此前已被讨论过,但在此我们深入研究该化合物的宏观磁行为,以揭示在其及其母体甲酸盐钙钛矿家族中发现的非典型磁响应的起源。特别是,它们在零场冷却后从低温开始测量的曲线中显示出令人费解的磁化反转。第一个非典型现象是即使通过消除外加磁场并补偿地磁场的影响也无法达到零磁化。需要相对较大的磁场才能将磁化从负值切换到正值,反之亦然,这与软铁磁系统相符。在其低温下的首次磁化曲线和磁滞回线中发现的非典型路径是最显著的特征。磁化曲线从首次磁化回线的超过1200 Oe切换到后续磁化回线。这一特征无法用基于不平衡畴对的模型来解释。因此,我们根据这种材料的非 commensurate结构来解读这种行为。我们特别提出,外加磁场会诱导从磁非 commensurate结构到磁调制共线结构的磁相变。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7a05/9942519/0f5473dba761/jp2c08364_0002.jpg

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