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  5. Investigating ultraflexible freestanding graphene by scanning tunneling microscopy and spectroscopy
 
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Investigating ultraflexible freestanding graphene by scanning tunneling microscopy and spectroscopy

Journal
Physical Review B
Journal Volume
96
Journal Issue
8
Pages
085433-1 - 085433-8
Date Issued
2017
Author(s)
Breitwieser, R.
Hu, Y.-C.
Chao, Y.C.
Tzeng, Y.R.
Liou, S.-C.
Lin, K.C.
Chen, C.W.
Pai, W.W.  
DOI
10.1103/PhysRevB.96.085433
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/485351
Abstract
A strictly two-dimensional (2D) material such as freestanding graphene (FSG) is rarely investigated at the atomic scale by scanning tunneling microscopy (STM) and scanning tunneling spectroscopy (STS). A basic difficulty in probing FSG by STM and STS is the mechanical instability when a highly compliant 2D atomic layer interacts with a proximal tip. Here we report a detailed method to conduct reliable STM and STS on FSG with atomic precision. We found that FSG is intrinsically rippled and exhibits a nonlinear strain-stress relation under applied normal forces; it shows a very soft region of bending strain and stiffer regions of in-plane tensile strain once the nanoscale ripples of FSG are eliminated. The elimination of the nanoripples can be controlled by tip-induced pulling or pushing force through the so-called closed-loop Z-V STS mode which can monitor the FSG deformation. A key factor for controllable STM and STS measurements is to select tunneling set points to place FSG in metastable configurations, as determined from stress-strain (i.e., Z-V) response. Atomic imaging and electronic states thus measured must be interpreted by considering the dynamical deformation of FSG as tunneling parameters, and therefore tip-FSG forces, are varied.
Publisher
American Physical Society
Type
journal article

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