隐藏能量尺度和f比在几何挫折磁铁中的起源
Phillip Popp1, Arthur P Ramirez1, Sergey Syzranov1
1University of California, Santa Cruz, Physics Department, California 95064, USA.
Physical review letters
|June 23, 2025
概括
在几何上受挫的磁体中可能存在量子自旋液体 (QSL). 这些材料中隐藏的能量尺度 (T*),与非磁性激发相关,控制了旋玻璃的结,并限制了挫折,影响了QSL潜力.
科学领域:
- 凝聚物质物理学 凝聚物质物理学
- 量子磁力 量子磁力 量子磁力
- 材料科学 材料科学 材料科学
背景情况:
- 几何丧 (GF) 磁体是容纳量子自旋液体 (QSL) 的首选候选者.
- 一些GF磁铁表现出旋转玻璃结在一个.
- 隐藏的能量尺度隐藏的能量尺度
- ,可能会阻碍QSL的形成.
- 这种隐藏的尺度明显低于微观自旋相互作用能量尺度.
研究的目的:
- 调查GF磁铁中隐藏的能量尺度的起源.
- 确定这个隐藏的能量尺度和f比率 (优点的丧数字) 之间的关系.
主要方法:
- 对GF磁铁中特定热量的实验和数值数据的分析.
- 理论论证将隐藏的尺度与非磁性激发联系起来.
- 激发与伊辛模型基本状态的比较.
- 在灭失调的存在下对旋转玻璃结的研究.
主要成果:
- 在特定热量中,GF磁铁普遍显示两个不同的温度尺度,其中最低的温度尺度接近隐藏能量尺度T*.
- T*归因于非磁性刺激,类似于旋转链中的旋转交换.
- 这些激发的集体与同一格子上的伊辛模型基本状态相匹配.
- 在无序的GF材料中,玻璃的结发生在T*级的温度下.
结论:
- 在GF磁铁中隐藏的能量尺度T*来源于非磁性刺激.
- T* 是干净的GF介质的内在性质,独立于混乱.
- T*对f比率施加了约束,影响了这些材料中QSL的潜力.
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