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拓扑相边界附近低带隙石墨烯纳米带中的大量狄拉克费米子行为。

Massive Dirac Fermion Behavior in a Low Bandgap Graphene Nanoribbon Near a Topological Phase Boundary.

作者信息

Sun Qiang, Gröning Oliver, Overbeck Jan, Braun Oliver, Perrin Mickael L, Borin Barin Gabriela, El Abbassi Maria, Eimre Kristjan, Ditler Edward, Daniels Colin, Meunier Vincent, Pignedoli Carlo A, Calame Michel, Fasel Roman, Ruffieux Pascal

机构信息

Empa, Swiss Federal Laboratories for Materials Science and Technology, 8600, Dübendorf, Switzerland.

Department of Physics, University of Basel, Klingelbergstrasse 80, 4056, Basel, Switzerland.

出版信息

Adv Mater. 2020 Mar;32(12):e1906054. doi: 10.1002/adma.201906054. Epub 2020 Feb 11.

Abstract

Graphene nanoribbons (GNRs) have attracted much interest due to their largely modifiable electronic properties. Manifestation of these properties requires atomically precise GNRs which can be achieved through a bottom-up synthesis approach. This has recently been applied to the synthesis of width-modulated GNRs hosting topological electronic quantum phases, with valence electronic properties that are well captured by the Su-Schrieffer-Heeger (SSH) model describing a 1D chain of interacting dimers. Here, ultralow bandgap GNRs with charge carriers behaving as massive Dirac fermions can be realized when their valence electrons represent an SSH chain close to the topological phase boundary, i.e., when the intra- and interdimer coupling become approximately equal. Such a system has been achieved via on-surface synthesis based on readily available pyrene-based precursors and the resulting GNRs are characterized by scanning probe methods. The pyrene-based GNRs (pGNRs) can be processed under ambient conditions and incorporated as the active material in a field effect transistor. A quasi-metallic transport behavior is observed at room temperature, whereas at low temperature, the pGNRs behave as quantum dots showing single-electron tunneling and Coulomb blockade. This study may enable the realization of devices based on carbon nanomaterials with exotic quantum properties.

摘要

石墨烯纳米带(GNRs)因其可大幅调控的电子特性而备受关注。这些特性的表现需要原子级精确的GNRs,而这可通过自下而上的合成方法来实现。该方法最近已应用于合成承载拓扑电子量子相的宽度调制GNRs,其价电子特性能被描述一维相互作用二聚体链的Su-Schrieffer-Heeger(SSH)模型很好地捕捉。在此,当价电子代表接近拓扑相边界的SSH链时,即当二聚体内和二聚体间耦合近似相等时,可实现具有表现为大质量狄拉克费米子的电荷载流子的超低带隙GNRs。这样一个系统已通过基于易于获得的芘基前驱体的表面合成得以实现,所得GNRs通过扫描探针方法进行表征。芘基GNRs(pGNRs)可在环境条件下进行加工,并作为活性材料并入场效应晶体管中。在室温下观察到准金属传输行为,而在低温下,pGNRs表现为量子点,呈现单电子隧穿和库仑阻塞。这项研究可能使基于具有奇异量子特性的碳纳米材料的器件得以实现。

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