Liao Xin, Chen Yun, Xie Tao, Sun Rui-Jing, Yang Lian-Zhi, Liu Chao-Fei, Wang Rui, Klyatskaya Svetlana, Ruben Mario, Zhang Wenhao, Fu Ying-Shuang
School of Physics and Wuhan National High Magnetic Field Center, Huazhong University of Science and Technology, Wuhan, China.
National Laboratory of Solid State Microstructures and Department of Physics, Nanjing University, Nanjing, China.
Nat Commun. 2025 Jul 7;16(1):6263. doi: 10.1038/s41467-025-61594-4.
Electrically probing the spin state of localized f electrons in a rare-earth-based single-molecule magnet, along with understanding its intramolecular magnetic coupling, is of crucial importance for applications in quantum information and advanced spintronics, yet it remains experimentally challenging. Herein, within a single-molecule magnet terbium(III) bis(phthalocyaninato) (TbPc) double-decker molecule adsorbed on a bilayer graphene epitaxially grown on a SiC(0001) substrate, we experimentally demonstrate a spatially dependent exchange interaction between the magnetic moment of the localized Tb 4f electron and the unpaired spin of the Pc π-radical. The magnetic state of TbPc, associated with the f-π interaction, is evidently detected through the spectroscopic Kondo resonance and a zero-field Kondo splitting, which can be reversibly switched in a charge/discharge process triggered by the tip-molecule distance. Furthermore, we theoretically describe how the Kondo resonance evolves at the molecular scale, which is mediated by the f-π exchange interaction with its strength varying spatially in a radial decay fashion. Our spatially resolved Kondo characteristics offer a quantitative understanding of the many-body spin correlation, which is coupled with the charge states in a nonuniform and spatially extended system.
用电学方法探测稀土基单分子磁体中局域f电子的自旋状态,以及了解其分子内磁耦合,对于量子信息和先进自旋电子学中的应用至关重要,但在实验上仍然具有挑战性。在此,在吸附于外延生长在SiC(0001)衬底上的双层石墨烯上的单分子磁体铽(III)双(酞菁) (TbPc)双层分子中,我们通过实验证明了局域Tb 4f电子的磁矩与Pc π自由基的未配对自旋之间存在空间依赖性交换相互作用。通过光谱近藤共振和零场近藤分裂,明显检测到了与f-π相互作用相关的TbPc的磁状态,该状态可在由针尖-分子距离触发的充电/放电过程中可逆切换。此外,我们从理论上描述了近藤共振在分子尺度上是如何演变的,它由f-π交换相互作用介导,其强度以径向衰减的方式在空间上变化。我们的空间分辨近藤特性提供了对多体自旋相关性的定量理解,这种相关性在非均匀且空间扩展的系统中与电荷状态相耦合。