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Scanning tunneling microscopy and atomic force microscopy on organic biomolecules.
These results are qualitatively consistent with scanning tunneling microscopy (Figure 3).
Hulsken, B. et al. Scanning tunneling microscopy and spectroscopy studies of porphyrins at solid-liquid interfaces.
They also worked on phenomenology of scanning tunneling microscopy measurements in high-temperature superconductors.
Sagisaka, K. & Fujita, D. Standing waves on Si(100) and Ge(100) surfaces observed by scanning tunneling microscopy.
Moors, M. et al. Resistive switching mechanisms on TaOx and SrRuO3 thin-film surfaces probed by scanning tunneling microscopy.
Scanning tunneling microscopy has provided realistic images that confirm beyond doubt the essential features of molecular geometry.
Buchner, F. et al. Chemical fingerprints of large organic molecules in scanning tunneling microscopy: imaging adsorbate-substrate coupling of metalloporphyrins.
Kuroda, M. & Nishino, T. Preparation of tips coated with poly(dimethylsiloxane) for scanning tunneling microscopy in aqueous solutions.
Lucht, K. et al. Hydrophilicity and microsolvation of an organic molecule resolved on the submolecular level by scanning tunneling microscopy.
Ultrahigh vacuum (UHV) scanning tunneling microscopy (STM) was used to confirm the structure of the eGNRs and measure their bandgap.
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