Li Linfei, Schultz Jeremy F, Mahapatra Sayantan, Lu Zhongyi, Zhang Xu, Jiang Nan
Department of Chemistry, University of Illinois Chicago, Chicago, IL, 60607, USA.
Department of Physics and Astronomy, California State University, Northridge, Northridge, CA, 91330, USA.
Nat Commun. 2022 Apr 4;13(1):1796. doi: 10.1038/s41467-022-29445-8.
The chemical interrogation of individual atomic adsorbates on a surface significantly contributes to understanding the atomic-scale processes behind on-surface reactions. However, it remains highly challenging for current imaging or spectroscopic methods to achieve such a high chemical spatial resolution. Here we show that single oxygen adatoms on a boron monolayer (i.e., borophene) can be identified and mapped via ultrahigh vacuum tip-enhanced Raman spectroscopy (UHV-TERS) with ~4.8 Å spatial resolution and single bond (B-O) sensitivity. With this capability, we realize the atomically defined, chemically homogeneous, and thermally reversible oxidation of borophene via atomic oxygen in UHV. Furthermore, we reveal the propensity of borophene towards molecular oxygen activation at room temperature and phase-dependent chemical properties. In addition to offering atomic-level insights into the oxidation of borophene, this work demonstrates UHV-TERS as a powerful tool to probe the local chemistry of surface adsorbates in the atomic regime with widespread utilities in heterogeneous catalysis, on-surface molecular engineering, and low-dimensional materials.
对表面上单个原子吸附物进行化学分析,对于理解表面反应背后的原子尺度过程具有重要意义。然而,当前的成像或光谱方法要实现如此高的化学空间分辨率仍然极具挑战性。在此,我们展示了通过超高真空针尖增强拉曼光谱(UHV-TERS),能够以约4.8 Å的空间分辨率和对单键(B-O)的灵敏度识别并绘制硼单层(即硼烯)上的单个氧吸附原子。借助这一能力,我们在超高真空环境下通过原子氧实现了硼烯的原子级定义、化学均匀且热可逆的氧化。此外,我们揭示了硼烯在室温下对分子氧活化的倾向以及相依赖的化学性质。除了为硼烯的氧化提供原子层面的见解外,这项工作还证明了UHV-TERS是一种强大的工具,可用于在原子尺度探测表面吸附物的局部化学性质,在多相催化、表面分子工程和低维材料等领域具有广泛应用。