Im Taehwan, Song Sun Kyu, Park Jae Whan, Yeom Han Woong
Center for Artificial Low Dimensional Electronic System, Institute for Basic Science, Pohang, Korea.
Department of Physics, Pohang University of Science and Technology, Pohang, Korea.
Nat Commun. 2023 Aug 22;14(1):5085. doi: 10.1038/s41467-023-40834-5.
Soliton molecules, bound states of two solitons, can be important for the informatics using solitons and the quest for exotic particles in a wide range of physical systems from unconventional superconductors to nuclear matter and Higgs field, but have been observed only in temporal dimension for classical wave optical systems. Here, we identify a topological soliton molecule formed spatially in an electronic system, a quasi 1D charge density wave of indium atomic wires. This system is composed of two coupled Peierls chains, which are endowed with a Z topology and three distinct, right-chiral, left-chiral, and non-chiral, solitons. Our scanning tunneling microscopy measurements identify a bound state of right- and left-chiral solitons with distinct in-gap states and net zero phase shift. Our density functional theory calculations reveal the attractive interaction of these solitons and the hybridization of their electronic states. This result initiates the study of the interaction between solitons in electronic systems, which can provide novel manybody electronic states and extra data-handling capacity beyond the given soliton topology.
孤子分子,即两个孤子的束缚态,对于使用孤子的信息学以及在从非常规超导体到核物质和希格斯场等广泛物理系统中寻找奇异粒子可能很重要,但仅在经典波光学系统的时间维度中被观测到。在此,我们识别出一种在电子系统中空间形成的拓扑孤子分子,即铟原子线的准一维电荷密度波。该系统由两条耦合的派尔斯链组成,它们具有Z拓扑结构以及三种不同的、右旋、左旋和非手性的孤子。我们的扫描隧道显微镜测量识别出具有不同能隙态和净零相移的右旋和左旋孤子的束缚态。我们的密度泛函理论计算揭示了这些孤子之间的吸引相互作用及其电子态的杂化。这一结果开启了对电子系统中孤子间相互作用的研究,这可以提供超越给定孤子拓扑结构的新型多体电子态和额外的数据处理能力。