拓扑缺陷运动的原子尺度跟踪与不相称电荷序熔化

IF 11.6 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Noah Schnitzer, Berit H. Goodge, Gregory Powers, Jaewook Kim, Sang-Wook Cheong, Ismail El Baggari, Lena F. Kourkoutis
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引用次数: 0

摘要

电荷顺序遍及量子材料的相图,在那里它与超导相和磁相竞争,承载电子相变和拓扑缺陷,并与晶格耦合产生复杂的结构扭曲。在锰氧化物中,不相称的电荷顺序很容易稳定,这与异常的电子和磁性有关,但其纳米级结构的不均匀性使其与竞争相的关系的精确表征和理解复杂化。利用原子分辨率变温低温扫描透射电子显微镜,我们描述了在模型锰矿系统中从基态转变时电荷顺序的热演化。我们发现,移动网络的失调和位错产生相位不均匀性和诱导全局不通约性在一个否则晶格锁定调制。在高温下驱动有序的熔解,反常密度增大,有序区域局部与晶格周期性解耦。2025年由美国物理学会出版
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Atomic-Scale Tracking of Topological Defect Motion and Incommensurate Charge Order Melting
Charge order pervades the phase diagrams of quantum materials where it competes with superconducting and magnetic phases, hosts electronic phase transitions and topological defects, and couples to the lattice generating intricate structural distortions. Incommensurate charge order is readily stabilized in manganese oxides, where it is associated with anomalous electronic and magnetic properties, but its nanoscale structural inhomogeneity complicates precise characterization and understanding of its relationship with competing phases. Leveraging atomic-resolution variable-temperature cryogenic scanning transmission electron microscopy, we characterize the thermal evolution of charge order as it transforms from its ground state in a model manganite system. We find that mobile networks of discommensurations and dislocations generate phase inhomogeneity and induce global incommensurability in an otherwise lattice-locked modulation. Driving the order to melt at high temperatures, the discommensuration density grows, and regions of order locally decouple from the lattice periodicity. Published by the American Physical Society 2025
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来源期刊
Physical Review X
Physical Review X PHYSICS, MULTIDISCIPLINARY-
CiteScore
24.60
自引率
1.60%
发文量
197
审稿时长
3 months
期刊介绍: Physical Review X (PRX) stands as an exclusively online, fully open-access journal, emphasizing innovation, quality, and enduring impact in the scientific content it disseminates. Devoted to showcasing a curated selection of papers from pure, applied, and interdisciplinary physics, PRX aims to feature work with the potential to shape current and future research while leaving a lasting and profound impact in their respective fields. Encompassing the entire spectrum of physics subject areas, PRX places a special focus on groundbreaking interdisciplinary research with broad-reaching influence.
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