Yang Yu, Zhou Yan, Tang Ziming, Liu Yulu, Quan Weimin, Zhou Jun, Li Xiaokang, Xi Xiaoxiang, Gong Qihua, Zhang Lifa, Zhao Yunshan
Phonon Engineering Research Center of Jiangsu Province, Ministry of Education Key Laboratory of NSLSCS, Center for Quantum Transport and Thermal Energy Science, Institute of Physics Frontiers and Interdisciplinary Sciences, School of Physics and Technology, Nanjing Normal University, Nanjing, 210023, China.
College of Physics and State Key Lab of Mechanics and Control for Aerospace Structures and Key Lab for Intelligent Nano Materials and Devices of Ministry of Education and College of Aerospace Engineering, Nanjing University of Aeronautics and Astronautics (NUAA), Nanjing, 210016, China.
Adv Sci (Weinh). 2025 Jul;12(26):e2502440. doi: 10.1002/advs.202502440. Epub 2025 Apr 25.
Few-layer van der Waals magnets are exceptional candidates for investigating the fundamental spin behaviors and advancing the development of next-generation ultra-compact spintronic devices. While the intrinsic long-range magnetic order is well-established in the monolayer limit, the thermal transport behavior involving magnons, phonons, and magnetophonon polarons near the phase transition remains largely unexplored. In this work, the thermal transport behavior is probed near the phase transitions from bulk to the monolayer limit by using a differential suspended thermal bridge method, which provides an ultra-sensitive temperature and thermal conductance measurement enhanced by the double Wheatstone bridge. In the few-layer CrOCl flake, a stronger magnon-phonon coupling is observed compared to the bulk, resulting in a shift in the thermal transport behavior from a dip to a peak shape around the Néel temperature. Additionally, below the Néel temperature, the few-layer CrOCl significantly enhances the interfacial thermal conductance between the metal electrode and insulator substrate, potentially leading to the substantial improvements in the heat dissipation in Si-based semiconductor devices. This study introduces a novel method and strategy for probing the fundamental magnetic phase transition behavior and lays a solid foundation for the potential application of van der Waals magnets in the electronic devices.
少层范德华磁体是研究基本自旋行为和推动下一代超紧凑型自旋电子器件发展的理想候选材料。虽然在单层极限情况下本征长程磁序已得到充分确立,但在相变附近涉及磁振子、声子和磁声子极化子的热输运行为仍 largely 未被探索。在这项工作中,通过使用差分悬浮热桥方法在从体相到单层极限的相变附近探测热输运行为,该方法通过双惠斯通电桥提供超灵敏的温度和热导率测量。在少层 CrOCl 薄片中,与体相相比观察到更强的磁振子 - 声子耦合,导致热输运行为在奈尔温度附近从凹陷形状转变为峰值形状。此外,在奈尔温度以下,少层 CrOCl 显著提高了金属电极与绝缘体衬底之间的界面热导率,这可能会使硅基半导体器件的散热得到实质性改善。本研究引入了一种探测基本磁相变行为的新方法和策略,并为范德华磁体在电子器件中的潜在应用奠定了坚实基础。