Tenorio Maria, Moreno Cesar, Febrer Pol, Castro-Esteban Jesús, Ordejón Pablo, Peña Diego, Pruneda Miguel, Mugarza Aitor
Catalan Institute of Nanoscience and Nanotechnology (ICN2), CSIC and The Barcelona Institute of Science and Technology, Campus UAB, Bellaterra, Barcelona, 08193, Spain.
Departamento de Ciencias de la Tierra y Fisica de la Materia Condensada, Universidad de Cantabria, Santander, 39005, Spain.
Adv Mater. 2022 May;34(20):e2110099. doi: 10.1002/adma.202110099. Epub 2022 Apr 10.
Nanometer scale lateral heterostructures with atomically sharp band discontinuities can be conceived as the 2D analogues of vertical Van der Waals heterostructures, where pristine properties of each component coexist with interfacial phenomena that result in a variety of exotic quantum phenomena. However, despite considerable advances in the fabrication of lateral heterostructures, controlling their covalent interfaces and band discontinuities with atomic precision, scaling down components and producing periodic, lattice-coherent superlattices still represent major challenges. Here, a synthetic strategy to fabricate nanometer scale, coherent lateral superlattice heterojunctions with atomically sharp band discontinuity is reported. By merging interdigitated arrays of different types of graphene nanoribbons by means of a novel on-surface reaction, superlattices of 1D, and chemically heterogeneous nanoporous junctions are obtained. The latter host subnanometer quantum dipoles and tunneling in-gap states, altogether expected to promote interfacial phenomena such as interribbon excitons or selective photocatalysis.
具有原子级尖锐能带不连续性的纳米级横向异质结构可被视为垂直范德华异质结构的二维类似物,其中每个组分的原始特性与导致各种奇异量子现象的界面现象共存。然而,尽管在横向异质结构的制造方面取得了相当大的进展,但以原子精度控制其共价界面和能带不连续性、缩小组件尺寸以及生产周期性、晶格相干的超晶格仍然是重大挑战。在此,报道了一种合成策略,用于制造具有原子级尖锐能带不连续性的纳米级相干横向超晶格异质结。通过一种新颖的表面反应合并不同类型石墨烯纳米带的叉指阵列,获得了一维超晶格和化学性质不同的纳米多孔结。后者包含亚纳米级量子偶极子和隧穿能隙态,预计这些将共同促进诸如带间激子或选择性光催化等界面现象。