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Atomic-Scale Insights into the Interlayer Characteristics and Oxygen Reactivity of Bilayer Borophene
Authors:Dr Linfei Li  Dr Jeremy F Schultz  Dr Sayantan Mahapatra  Prof Xiaolong Liu  Prof Xu Zhang  Prof Mark C Hersam  Prof Nan Jiang
Institution:1. Department of Chemistry, University of Illinois Chicago, Chicago, IL 60607 USA;2. Department of Physics and Astronomy, University of Notre Dame, Notre Dame, IN 46556 USA;3. Department of Physics and Astronomy, California State University, Northridge, CA 91330 USA;4. Department of Materials Science and Engineering, Northwestern University, Evanston, IL 60208 USA
Abstract:Bilayer (BL) two-dimensional boron (i.e., borophene) has recently been synthesized and computationally predicted to have promising physical properties for a variety of electronic and energy technologies. However, the fundamental chemical properties of BL borophene that form the foundation of practical applications remain unexplored. Here, we present atomic-level chemical characterization of BL borophene using ultrahigh vacuum tip-enhanced Raman spectroscopy (UHV-TERS). UHV-TERS identifies the vibrational fingerprint of BL borophene with angstrom-scale spatial resolution. The observed Raman spectra are directly correlated with the vibrations of interlayer boron–boron bonds, validating the three-dimensional lattice geometry of BL borophene. By virtue of the single-bond sensitivity of UHV-TERS to oxygen adatoms, we demonstrate the enhanced chemical stability of BL borophene compared to its monolayer counterpart by exposure to controlled oxidizing atmospheres in UHV. In addition to providing fundamental chemical insight into BL borophene, this work establishes UHV-TERS as a powerful tool to probe interlayer bonding and surface reactivity of low-dimensional materials at the atomic scale.
Keywords:Borophene  Interlayer Interactions  Oxidation  Tip-Enhanced Raman Spectroscopy  Two-Dimensional Materials
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