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Beilstein J. Nanotechnol. 2025, 16, 1677–1694, doi:10.3762/bjnano.16.118
Figure 1: Picture of the electrochemical APXPS setup at HIPPIE. The EEA on the left is facing the working ele...
Figure 2: Spectroscopic and geometric characterization of the hydroperoxyl–water complex. (a) IR–vis SFG spec...
Figure 3: Schematic representation of the three undercover reactions studied. Starting from oxygen-intercalat...
Figure 4: Hydrogen oxidation reaction under ~0.5 ML Gr on Ir(111) at 370 K and 1 mbar total pressure. (a, b) ...
Figure 5: (Top) hBN and graphene protected Cu foils. (a, b) O 1s and (c, d) N 1s and C 1s 2D intensity plots ...
Figure 6: Sketch of the two different measurement mechanisms possible at the DLD at HIPPIE.
Figure 7: (A–D) O 1s and N 1s core level spectra in surface- and gas phase-sensitive positions measured in pu...
Figure 8: (A) Pd 3d core level spectra measured in continuous mode during experiment 2 in surface sensitive p...
Figure 9: Schematic layout showing the alignment between external light sources, beamline, and analyzer nozzl...
Figure 10: (a) Ni 2p XP spectra recorded at 1 mbar H2O pressure under dark (bottom spectra) and light illumina...
Figure 11: Sample A was initially cleaned by bombarding it with elemental hydrogen, thus removing all of the o...
Figure 12: Time-resolved XP spectra acquired during the TDMAHf deposition on InAs showing (a) the As 3d core l...
Figure 13: (Left) Layered model of surface region illustrating the metal substrate, oxide layer, hydroxide lay...
Figure 14: Passive film breakdown. (a) In situ APXPS spectra of Ni 2p3/2, Cr 2p3/2, and Mo 3d measured at pH 7...
Figure 15: (a) C 1s spectra of the interface between glassy carbon and a 1 M LiPF6/propylene carbonate electro...