Institute for Molecules and Materials, Radboud University, Nijmegen, Netherlands.
Science. 2023 Jun 9;380(6649):1048-1052. doi: 10.1126/science.adf2685. Epub 2023 Jun 8.
Bottom-up quantum simulators have been developed to quantify the role of various interactions, dimensionality, and structure in creating electronic states of matter. Here, we demonstrated a solid-state quantum simulator emulating molecular orbitals, based solely on positioning individual cesium atoms on an indium antimonide surface. Using scanning tunneling microscopy and spectroscopy, combined with ab initio calculations, we showed that artificial atoms could be made from localized states created from patterned cesium rings. These artificial atoms served as building blocks to realize artificial molecular structures with different orbital symmetries. These corresponding molecular orbitals allowed us to simulate two-dimensional structures reminiscent of well-known organic molecules. This platform could further be used to monitor the interplay between atomic structures and the resulting molecular orbital landscape with submolecular precision.
自下而上的量子模拟器已经被开发出来,以量化各种相互作用、维度和结构在创造物质的电子态方面的作用。在这里,我们展示了一种基于将单个铯原子定位在锑化铟表面上的固态量子模拟器,用于模拟分子轨道。通过扫描隧道显微镜和光谱学,结合从头算计算,我们表明可以从图案化的铯环中创建的局域态来制造人工原子。这些人工原子可以作为构建块来实现具有不同轨道对称性的人工分子结构。这些相应的分子轨道使我们能够模拟类似于著名有机分子的二维结构。该平台可以进一步用于以亚分子精度监测原子结构和由此产生的分子轨道景观之间的相互作用。