4.8 Article

Control of Surface and Edge Oxidation on Phosphorene

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 9, 期 10, 页码 9126-9135

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.6b16111

关键词

2D materials; black phosphorus; phosphorene; oxidation; surface functionalization; edge functionalization; DFT; binding energy shift

资金

  1. UNC Chapel Hill startup funds
  2. ACS Petroleum Research Fund [55497-DNI3]
  3. NSFC [51331006, U1537204]
  4. NSF/AFOSR EFRI 2-DARE Grant [EFMA-1433459]
  5. Liaoning Province Doctor Startup Fund [201601325]
  6. Liaoning Shihua University Grant [2016XJJ-044]
  7. National Science Foundation as part of the National Nanotechnology Coordinated Infrastructure, NNCI [ECCS-1542015]
  8. U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences [DE-SC0001011]
  9. Emerging Frontiers & Multidisciplinary Activities
  10. Directorate For Engineering [1433459] Funding Source: National Science Foundation

向作者/读者索取更多资源

Phosphorene is emerging as an important two-dimensional semiconductor, but controlling the surface chemistry of phosphorene remains a significant challenge. Here, we show that controlled oxidation of phosphorene determines the composition and spatial distribution of the resulting oxide. We used X-ray photoemission spectroscopy to measure the binding energy shifts that accompany oxidation. We interpreted these spectra by calculating the binding energy shift for 24 likely bonding configurations, including phosphorus oxides and hydroxides located on the basal surface or edges of flakes. After brief exposure to high-purity oxygen or high-purity water vapor at room temperature, we observed phosphorus in the +1 and +2 oxidation states; longer exposures led to a large population of phosphorus in the +3 oxidation state. To provide insight into the spatial distribution of the oxide, transmission electron microscopy was performed at several stages during the oxidation. We found crucial differences between oxygen and water oxidants: while pure oxygen produced an oxide layer on the van der Waals surface, water oxidized the material at pre-existing defects such as edges or steps. We propose a mechanism based on the thermodynamics of electron transfer to interpret these observations. This work opens a route to functionalize the basal surface or edges of two-dimensional (2D) black phosphorus through site-selective chemical reactions and presents the opportunity to explore the synthesis of 2D phosphorene oxide by oxidation.

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