A Radical Spin Ladder
Abstract
Abstract The spin ladder model is an important platform bridging one-dimensional and two-dimensional magnetic systems, with its physical properties modulated by geometric configuration. As such, the S = 1/2 two-leg antiferromagnetic spin ladder has attracted attention due to its potential connection to unconventional superconductivity. Here, we combine on-surface synthesis with scanning probe microscopy to achieve atomic-precision construction and unit-by-unit manipulation of such ladders of varying lengths on Au(111). By integrating tip-induced dehydrogenation with differential conductance spectroscopy, we systematically characterize the spin coupling strengths along both the rung and leg directions, revealing antiferromagnetic couplings. We observe the evolution of spin excitation spectra as a function of ladder length and a parity effect: even-length ladders exhibit a larger low-energy excitation gap than odd-length ones. Results agree with density matrix renormalization group simulations. Further calculations show the gap remains finite in the thermodynamic limit. This work lays the foundation for the future design and realization of more complex artificial spin–lattices and quantum spin devices.
// Source
Authors: Yan Zhao, Pengyi Liu, 姜恺悦, Hui Zhang, Yuanming Xiong, Jie Li, Xinchen Fang, Yutong Zhu, Chi-Ioi Li, Xin Li, Lian‐Mao Peng, Kai Wu, Song Gao, Xiaodong Zhuang, Chendong Zhang, Yajie Zhang, Qing‐Feng Sun, Yongfeng Wang
Institutions: Shanghai Jiao Tong University, Peking University, South China University of Technology, Wuhan University, King University, Hefei National Center for Physical Sciences at Nanoscale, Hefei University