论文标题
设计师的扁平带中的一维原子晶格
Designer Flat Bands in Quasi-One-Dimensional Atomic Lattices
论文作者
论文摘要
具有特定几何形状的某些晶格具有严格平坦的一个或多个光谱带,即电子能量与动量无关。无论是由于晶格对称性而导致的晶格位点之间的特定耦合,也可以强烈地发生这种情况,也可以是由于晶格位点之间的微调耦合而引起的。虽然平面电子带背后的理论图片已经发达了,但这些晶格的实验实现已被证明具有挑战性。利用扫描隧道显微镜(STM)和光谱学(STS),我们在Cu(100)上操纵氯单层中的单个空缺,以构建具有工程平面带的各种原子上精确的1D晶格。我们在实验上意识到具有单个或多个平坦频段的间隙和无间隙平面系统。我们还展示了平面频段能量的可调性,以及如何通过破坏和恢复晶格几何形状的对称性来“打开”和“关闭”。实验发现通过紧密结合计算证实。我们的结果构成了1D固态系统中工程式扁平带的第一个实验实现,并为例如构建例如建造铺平了道路。完全控制的系统中平面辅助超导性的拓扑平面系统和实验测试。
Certain lattices with specific geometries have one or more spectral bands that are strictly flat, i.e. the electron energy is independent of the momentum. This can occur robustly irrespective of the specific couplings between the lattices sites due to the lattice symmetry, or it can result from fine-tuned couplings between the lattice sites. While the theoretical picture behind flat electronic bands is well-developed, experimental realization of these lattices has proven challenging. Utilizing scanning tunnelling microscopy (STM) and spectroscopy (STS), we manipulate individual vacancies in a chlorine monolayer on Cu(100) to construct various atomically precise 1D lattices with engineered flat bands. We realize experimentally both gapped and gapless flat band systems with single or multiple flat bands. We also demonstrate tuneability of the energy of the flat bands and how they can be switched "on" and "off" by breaking and restoring the symmetry of the lattice geometry. The experimental findings are corroborated by tight-binding calculations. Our results constitute the first experimental realizations of engineered flat bands in a 1D solid-state system and pave the way towards the construction of e.g. topological flat band systems and experimental tests of flat-band-assisted superconductivity in a fully controlled system.