Works matching Scanning tunneling microscopy
Results: 3185
Semiconducting Polymer Thin Films Used in Organic Solar Cells: A Scanning Tunneling Microscopy Study.
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- Advanced Electronic Materials, 2019, v. 5, n. 2, p. N.PAG, doi. 10.1002/aelm.201800499
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Atomic‐Scale Observations of the Manganese Porphyrin/Au Catalyst Interface Under the Electrocatalytic Process Revealed with Electrochemical Scanning Tunneling Microscopy (Adv. Mater. Interfaces 23/2021).
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- Advanced Materials Interfaces, 2021, v. 8, n. 23, p. 1, doi. 10.1002/admi.202170140
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Scanning Tunneling Microscopy Study of HPMoVO ( x = 0-3) Wells-Dawson Heteropolyacid Catalysts: Correlation of NDR Peak Voltage with Reduction Potential and Oxidation Catalysis.
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- Catalysis Letters, 2011, v. 141, n. 6, p. 826, doi. 10.1007/s10562-011-0596-0
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Probing Local Emission Properties in InGaN/GaN Quantum Wells by Scanning Tunneling Luminescence Microscopy.
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- Physica Status Solidi (B), 2023, v. 260, n. 5, p. 1, doi. 10.1002/pssb.202200365
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Growth of PTCDA Films on Various Substrates Studied by Scanning Tunneling Microscopy and Spectroscopy.
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- Physica Status Solidi (B), 2019, v. 256, n. 2, p. N.PAG, doi. 10.1002/pssb.201800333
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Electrochemical Scanning Tunneling Microscopy as a Tool for the Detection of Active Electrocatalytic Sites.
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- Topics in Catalysis, 2023, v. 66, n. 15/16, p. 1270, doi. 10.1007/s11244-023-01807-6
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Site-specific Analysis of Amyloid Assemblies by Using Scanning Tunneling Microscopy.
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- Chinese Journal of Chemistry, 2015, v. 33, n. 1, p. 24, doi. 10.1002/cjoc.201400631
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Two-dimensional (2D) Supramolecular Coordination at Liquid/Solid Interfaces Studied by Scanning Tunneling Microscopy.
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- Chinese Journal of Chemistry, 2015, v. 33, n. 1, p. 53, doi. 10.1002/cjoc.201400499
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Double-tip effects on scanning tunneling microscopy imaging of 2D periodic objects: unambiguous detection and limits of their removal by crystallographic averaging in the spatial frequency domain.
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- Crystal Research & Technology, 2014, v. 49, n. 9, p. 663, doi. 10.1002/crat.201300240
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Active nanocharacterization of nanofunctional materials by scanning tunneling microscopy.
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- Science & Technology of Advanced Materials, 2008, v. 9, n. 1, p. 1, doi. 10.1088/1468-6996/9/1/013003
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Scanning tunneling microscopy and spectroscopy studies of superconducting boron-doped diamond films
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- Science & Technology of Advanced Materials, 2006, v. 7, p. 22, doi. 10.1016/j.stam.2006.05.008
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Cobalt-Porphyrin-Catalyzed Oxygen Reduction Reaction: A Scanning Tunneling Microscopy Study.
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- ChemElectroChem, 2016, v. 3, n. 12, p. 2048, doi. 10.1002/celc.201600435
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Manipulating Molecular Self-Assembly Process at the Solid–Liquid Interface Probed by Scanning Tunneling Microscopy.
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- Polymers (20734360), 2023, v. 15, n. 20, p. 4176, doi. 10.3390/polym15204176
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RECENT ADVANCES IN ULTRAFAST TIME-RESOLVED SCANNING TUNNELING MICROSCOPY.
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- Surface Review & Letters, 2018, v. 25, p. N.PAG, doi. 10.1142/S0218625X18410032
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EVALUATING COUPLING OF ADSORBED MOLECULES TO THEIR ENVIRONMENT IN SCANNING TUNNELING MICROSCOPY.
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- Surface Review & Letters, 2010, v. 17, n. 5/6, p. 441, doi. 10.1142/S0218625X10014375
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Observation of Vortex Clustering in Nano-Size Superconducting Pb Island Structures by Low-Temperature Scanning Tunneling Microscopy/Spectroscopy.
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- Journal of Superconductivity & Novel Magnetism, 2012, v. 25, n. 5, p. 1375, doi. 10.1007/s10948-012-1522-4
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Atomic‐Scale Observations of the Manganese Porphyrin/Au Catalyst Interface Under the Electrocatalytic Process Revealed with Electrochemical Scanning Tunneling Microscopy.
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- Advanced Materials Interfaces, 2021, v. 8, n. 23, p. 1, doi. 10.1002/admi.202100873
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Concentration induced the interfacial self-assembly polymorphism of 4, 4′-dihexadecyloxy-benzophenon by scanning tunneling microscopy.
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- Surface & Interface Analysis: SIA, 2013, v. 45, n. 8, p. 1304, doi. 10.1002/sia.5278
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Characterization of the topography and thickness of gallium thin films by scanning tunneling microscopy.
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- Instrumentation Science & Technology, 2016, v. 44, n. 6, p. 629, doi. 10.1080/10739149.2016.1176035
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Dynamic probe of ZnTe(110) surface by scanning tunneling microscopy.
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- Science & Technology of Advanced Materials, 2015, v. 16, n. 1, p. 1, doi. 10.1088/1468-6996/16/1/015002
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Towards Size-Controlled Deposition of Palladium Nanoparticles from Polyoxometalate Precursors: An Electrochemical Scanning Tunneling Microscopy Study.
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- ChemElectroChem, 2021, v. 8, n. 7, p. 1280, doi. 10.1002/celc.202100131
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An In Situ Scanning Tunneling Microscopy Study on the Electrochemical Interface between Au(111) and Ethaline Deep Eutectic Solvent.
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- ChemElectroChem, 2020, v. 7, n. 22, p. 4601, doi. 10.1002/celc.202001264
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Electrochemical Scanning Tunneling Microscopy Investigations of FeN<sub>4</sub>‐Based Macrocyclic Molecules Adsorbed on Au(111) and Their Implications in the Oxygen Reduction Reaction.
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- ChemElectroChem, 2020, v. 7, n. 6, p. 1431, doi. 10.1002/celc.202000137
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Spin-polarized scanning tunneling microscopy with quantitative insights into magnetic probes.
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- Nano Convergence, 2017, v. 4, n. 1, p. 1, doi. 10.1186/s40580-017-0102-5
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Single carbon dioxide molecules on surfaces studied by low-temperature scanning tunneling microscopy.
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- Research on Chemical Intermediates, 2017, v. 43, n. 9, p. 5229, doi. 10.1007/s11164-017-3054-9
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In situ Control of Si/Ge Growth on Stripe-Patterned Substrates Using Reflection High-Energy Electron Diffraction and Scanning Tunneling Microscopy.
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- Nanoscale Research Letters, 2010, v. 5, n. 12, p. 1935, doi. 10.1007/s11671-010-9814-8
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Temperature-Dependent Site Control of InAs/GaAs (001) Quantum Dots Using a Scanning Tunneling Microscopy Tip During Growth.
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- Nanoscale Research Letters, 2010, v. 5, n. 12, p. 1930, doi. 10.1007/s11671-010-9802-z
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Externally Applied Manipulation of Molecular Assemblies at Solid-Liquid Interfaces Revealed by Scanning Tunneling Microscopy.
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- Advanced Functional Materials, 2016, v. 26, n. 48, p. 8932, doi. 10.1002/adfm.201603145
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Scanning Tunneling Microscopy Study of α,ω-Dihexylsexithiophene Adlayers on Au(111): A Chiral Separation Induced by a Surface.
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- Microscopy & Microanalysis, 2012, v. 18, n. 4, p. 885, doi. 10.1017/S1431927612000566
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Detection of Surface States in Quantum Materials ZrTe 2 and TmB 4 by Scanning Tunneling Microscopy.
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- Condensed Matter, 2023, v. 8, n. 1, p. 9, doi. 10.3390/condmat8010009
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Atomically Resolved Scanning Tunneling Microscopy of Cleaved Chalcopyrite Surface.
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- Materials Transactions, 2023, v. 64, n. 12, p. 2748, doi. 10.2320/matertrans.M-M2023810
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Scanning tunneling microscopy tip-assisted modification of Ti(IV) dithiothreitol self-assembled monolayers on Au(111): restructuring of the gold surface.
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- Canadian Journal of Chemistry, 2013, v. 91, n. 5, p. 364, doi. 10.1139/cjc-2012-0467
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Scanning Tunneling Microscopy in (Bi, Sb)<sub>2</sub>(Te, Se, S)<sub>3</sub> Chalcogenide Thermoelectrics.
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- Semiconductors, 2022, v. 56, n. 3, p. 195, doi. 10.1134/S1063782622020105
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In Situ Quantification of the Local Electrocatalytic Activity via Electrochemical Scanning Tunneling Microscopy.
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- Small Methods, 2021, v. 5, n. 2, p. 1, doi. 10.1002/smtd.202000710
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Recent progress in the role of grain boundaries in two-dimensional transition metal dichalcogenides studied using scanning tunneling microscopy/spectroscopy.
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- Applied Microscopy, 2023, v. 53, n. 1, p. 1, doi. 10.1186/s42649-023-00088-3
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A variable X‐ray chopper system for phase‐sensitive detection in synchrotron X‐ray scanning tunneling microscopy.
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- Journal of Synchrotron Radiation, 2020, v. 27, n. 5, p. 1382, doi. 10.1107/S1600577520007869
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XTIP – the world's first beamline dedicated to the synchrotron X‐ray scanning tunneling microscopy technique.
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- Journal of Synchrotron Radiation, 2020, v. 27, n. 3, p. 836, doi. 10.1107/S1600577520003689
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New approach towards imaging λ-DNA using scanning tunneling microscopy/spectroscopy (STM/STS).
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- Bulletin of Materials Science, 2008, v. 31, n. 3, p. 309, doi. 10.1007/s12034-008-0049-6
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Methods to fabricate and recycle plasmonic probes for ultrahigh vacuum scanning tunneling microscopy‐based tip‐enhanced Raman spectroscopy.
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- Journal of Raman Spectroscopy, 2021, v. 52, n. 2, p. 573, doi. 10.1002/jrs.5951
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INTER-LAYER INTERACTION IN DOUBLE-WALLED CARBON NANOTUBES EVIDENCED BY SCANNING TUNNELING MICROSCOPY AND SPECTROSCOPY.
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- NANO, 2008, v. 3, n. 2, p. 65, doi. 10.1142/S1793292008000903
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SCANNING TUNNELING MICROSCOPY OF THIN FILM SURFACES AND FILM STEPS.
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- Microwave & Optical Technology Letters, 1989, v. 2, n. 4, p. 135, doi. 10.1002/mop.4650020407
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Atomic Level Insights into Metal Halide Perovskite Materials by Scanning Tunneling Microscopy and Spectroscopy.
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- Angewandte Chemie, 2022, v. 134, n. 5, p. 1, doi. 10.1002/ange.202112352
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In Situ Scanning Tunneling Microscopy of Cobalt‐Phthalocyanine‐Catalyzed CO<sub>2</sub> Reduction Reaction.
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- Angewandte Chemie, 2020, v. 132, n. 37, p. 16232, doi. 10.1002/ange.202005242
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The Effect of Deposition Time on the Surface Coverage of Sublimation Deposited Solid-Phase Glycine and Proline Molecules Measured by Scanning Tunneling Microscopy.
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- Molecules, 2020, v. 25, n. 13, p. 2962, doi. 10.3390/molecules25132962
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Scanning Tunneling Microscopy Study of Lipoic Acid, Mannose, and cRGD@AuNPs Conjugates.
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- Nanomaterials (2079-4991), 2023, v. 13, n. 18, p. 2596, doi. 10.3390/nano13182596
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Study of the Cu(111) Surface by Scanning Tunneling Microscopy: The Morphology Evolution, Reconstructions, Superstructures and Line Defects.
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- Nanomaterials (2079-4991), 2022, v. 12, n. 23, p. 4278, doi. 10.3390/nano12234278
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Scanning Tunneling Microscopy of Biological Structures: An Elusive Goal for Many Years.
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- Nanomaterials (2079-4991), 2022, v. 12, n. 17, p. 3013, doi. 10.3390/nano12173013
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Towards Laterally Resolved Ferromagnetic Resonance with Spin-Polarized Scanning Tunneling Microscopy.
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- Nanomaterials (2079-4991), 2019, v. 9, n. 6, p. 827, doi. 10.3390/nano9060827
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Nucleation and growth of Ge nanoclusters on the Si(111)-(7 × 7) surface studied by scanning tunneling microscopy.
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- Surface & Interface Analysis: SIA, 2015, v. 47, n. 2, p. 222, doi. 10.1002/sia.5693
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Structural Investigation of 4-Methylbenzenethiol Self-Assembled Monolayers on Au(111) by Scanning Tunneling Microscopy.
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- Bulletin of the Korean Chemical Society, 2014, v. 35, n. 5, p. 1275, doi. 10.5012/bkcs.2014.35.5.1275
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