In Situ Adjustable Nanogaps and In‐Plane Break Junctions

Author:

Zhao Xueyan1,Zhang Xubin1,Yin Kaikai1,Zhang Surong1,Zhao Zhikai1,Tan Min1,Xu Xiaona1,Zhao Zhibin1,Wang Maoning1,Xu Bingqian2,Lee Takhee3,Scheer Elke4,Xiang Dong1ORCID

Affiliation:

1. Institute of Modern Optics and Center of Single‐Molecule Science Tianjin Key Laboratory of Micro‐scale Optical Information Science and Technology Nankai University Tianjin 300350 China

2. College of Engineering University of Georgia Athens GA 30602 USA

3. Department of Physics and Astronomy and Institute of Applied Physics Seoul National University Seoul 08826 Korea

4. Department of Physics University of Konstanz 78457 Konstanz Germany

Abstract

AbstractThe ability to precisely regulate the size of a nanogap is essential for establishing high‐yield molecular junctions, and it is crucial for the control of optical signals in extreme optics. Although remarkable strategies for the fabrication of nanogaps are proposed, wafer‐compatible nanogaps with freely adjustable gap sizes are not yet available. Herein, two approaches for constructing in situ adjustable metal gaps are proposed which allow Ångstrom modulation resolution by employing either a lateral expandable piezoelectric sheet or a stretchable membrane. These in situ adjustable nanogaps are further developed into in‐plane molecular break junctions, in which the gaps can be repeatedly closed and opened thousands of times with self‐assembled molecules. The conductance of the single 1,4‐benzenediamine (BDA) and the BDA molecular dimer is successfully determined using the proposed strategy. The measured conductance agreeing well with the data by employing another well‐established scanning tunneling microscopy break junction technique provides insight into the formation of molecule dimer via hydrogen bond at single molecule level. The wafer‐compatible nanogaps and in‐plane dynamical break‐junctions provide a potential approach to fabricate highly compacted devices using a single molecule as a building block and supply a promising in‐plane technique to address the dynamical properties of single molecules.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Tianjin City

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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