- 21
How Water Makes the Surface Slippery; Friction on Water/Au(111) Investigated with Variable-Pressure Friction Force Microscopy.
ACS Nano 2025, 19 (46), 40271-40278.
DOI · 10.1021/acsnano.5c17887 ↗ - 20
Water–solid interactions on NaCl: Tracking adsorption to deliquescence with in situ scanning probe microscopy under a wide range of water vapor pressure.
The Journal of Chemical Physics 2025, 163 (17), 174706.
DOI · 10.1063/5.0288046 ↗ - 19
Atomic-Scale Friction and Adhesion at Ambient Pressure.
Langmuir 2024, 40 (41), 21317-21326.
DOI · 10.1021/acs.langmuir.4c01146 ↗ - 18
Pathways of Water-Induced Lead-Halide Perovskite Surface Degradation: Insights from In Situ Atomic-Scale Analysis.
ACS Nano 2023, 17 (24), 25679-25688.
DOI · 10.1021/acsnano.3c10611 ↗ - 17
In-situ imaging of the electrode surface during electrochemical reactions with a beetle-type electrochemical scanning tunneling microscope.
Current Applied Physics 2023, 50, 74-80.
DOI · 10.1016/j.cap.2023.03.016 ↗ - 16
Correlation between frictional heat and triboelectric charge: In operando temperature measurement during metal-polymer physical contact.
Nano Energy 2022, 103, 107813.
DOI · 10.1016/j.nanoen.2022.107813 ↗ - 15
In-Situ Nanotribological Properties of Ultrananocrystalline Diamond Films Investigated with Ambient Pressure Atomic Force Microscopy.
The Journal of Physical Chemistry C 2021, 125 (12), 6909-6915.
DOI · 10.1021/acs.jpcc.1c00454 ↗ - 14
Operando Surface Characterization on Catalytic and Energy Materials from Single Crystals to Nanoparticles.
ACS Nano 2020, 14 (12), 16392–16413.
DOI · 10.1021/acsnano.0c07549 ↗ - 13
Surface Termination-Dependent Nanotribological Properties of Single-Crystal MAPbBr3 Surfaces.
The Journal of Physical Chemistry C 2019, 124 (2), 1484-1491.
DOI · 10.1021/acs.jpcc.9b10191 ↗ - 12
Substoichiometric ultrathin zirconia films cause strong metal–support interaction.
Journal of Materials Chemistry A 2019, 7 (43), 24837-24846.
DOI · 10.1039/C9TA08438J ↗ - 11
Atomic-scale view of stability and degradation of single-crystal MAPbBr3 surfaces.
Journal of Materials Chemistry A 2019, 7 (36), 20760-20766.
DOI · 10.1039/C9TA05883D ↗ - 10
Nanoscale investigation of improved triboelectric properties of UV-irradiated ultrananocrystalline diamond films.
Nanoscale 2019, 11 (13), 6120-6128.
DOI · 10.1039/C9NR01113G ↗ - 09
Ambient-pressure atomic force microscope with variable pressure from ultra-high vacuum up to one bar.
Review of Scientific Instruments 2018, 89 (10), 103701.
DOI · 10.1063/1.5042076 ↗ - 08
Surface structures of ZrO2 films on Rh(111): From two layers to bulk termination.
Surface Science 2018, 679, 180-187.
DOI · 10.1016/j.susc.2018.09.004 ↗ - 07
Water adsorption at zirconia: from the ZrO2(111)/Pt3Zr(0001) model system to powder samples.
Journal of Materials Chemistry A 2018, 6, 17587-17601.
DOI · 10.1039/C8TA04137G ↗ - 06
Construction and evaluation of an ultrahigh-vacuum-compatible sputter deposition source.
Review of Scientific Instruments 2017, 88 (10), 103904.
DOI · 10.1063/1.4998700 ↗ - 05
Local conductance mapping of water-intercalated graphene on mica.
Applied Physics Letters 2016, 109 (24), 241602.
DOI · 10.1063/1.4972233 ↗ - 04
Metal Adatoms and Clusters on Ultrathin Zirconia Films.
The Journal of Physical Chemistry C 2016, 120 (18), 9920-9932.
DOI · 10.1021/acs.jpcc.6b03061 ↗ - 03
Growth of an Ultrathin Zirconia Film on Pt3Zr Examined by High-Resolution X-ray Photoelectron Spectroscopy, Temperature-Programmed Desorption, Scanning Tunneling Microscopy, and Density Functional Theory.
The Journal of Physical Chemistry C 2015, 119, 2462-2470.
DOI · 10.1021/jp5100846 ↗ - 02
The growth of ultra-thin zirconia films on Pd3Zr(0001).
Journal of Physics: Condensed Matter 2014, 26 (22), 225003.
DOI · 10.1088/0953-8984/26/22/225003 ↗ - 01
Global search algorithms in surface structure determination using photoelectron diffraction.
Surface Science 2011, 606 (3-4), 278-284.
DOI · 10.1016/j.susc.2011.10.003 ↗