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Determining the Number of Graphene Nanoribbons in Dual-Gate Field-Effect Transistors.


ABSTRACT: Bottom-up synthesized graphene nanoribbons (GNRs) are increasingly attracting interest due to their atomically controlled structure and customizable physical properties. In recent years, a range of GNR-based field-effect transistors (FETs) has been fabricated, with several demonstrating quantum-dot (QD) behavior at cryogenic temperatures. However, understanding the relationship between the cryogenic charge-transport characteristics and the number of the GNRs in the device is challenging, as the length and location of the GNRs in the junction are not precisely controlled. Here, we present a methodology based on a dual-gate FET that allows us to identify different scenarios, such as single GNRs, double or multiple GNRs in parallel, and a single GNR interacting with charge traps. Our dual-gate FET architecture therefore offers a quantitative approach for comprehending charge transport in atomically precise GNRs.

SUBMITTER: Zhang J 

PROVIDER: S-EPMC10540264 | biostudies-literature | 2023 Sep

REPOSITORIES: biostudies-literature

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Determining the Number of Graphene Nanoribbons in Dual-Gate Field-Effect Transistors.

Zhang Jian J   Barin Gabriela Borin GB   Furrer Roman R   Du Cheng-Zhuo CZ   Wang Xiao-Ye XY   Müllen Klaus K   Ruffieux Pascal P   Fasel Roman R   Calame Michel M   Perrin Mickael L ML  

Nano letters 20230906 18


Bottom-up synthesized graphene nanoribbons (GNRs) are increasingly attracting interest due to their atomically controlled structure and customizable physical properties. In recent years, a range of GNR-based field-effect transistors (FETs) has been fabricated, with several demonstrating quantum-dot (QD) behavior at cryogenic temperatures. However, understanding the relationship between the cryogenic charge-transport characteristics and the number of the GNRs in the device is challenging, as the  ...[more]

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