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  • American Institute of Physics (AIP)  (4)
  • 2000-2004  (2)
  • 1995-1999  (2)
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  • 1
    Electronic Resource
    Electronic Resource
    Woodbury, NY : American Institute of Physics (AIP)
    Applied Physics Letters 74 (1999), S. 2450-2452 
    ISSN: 1077-3118
    Source: AIP Digital Archive
    Topics: Physics
    Notes: Single-wall carbon nanotubes (SWNTs) were grown in the tunneling gap of a scanning tunneling microscope (STM). We could observe their growth processes in situ by operating the STM in a transmission electron microscope. The STM tip and sample were covered by graphite layers. The tip was lightly touched to the sample and subsequently retracted. Occasionally, a carbon nanobridge was generated between the tip and the sample. The bridge had the shape of SWNT at the tip side. © 1999 American Institute of Physics.
    Type of Medium: Electronic Resource
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  • 2
    Electronic Resource
    Electronic Resource
    Woodbury, NY : American Institute of Physics (AIP)
    Applied Physics Letters 79 (2001), S. 1169-1171 
    ISSN: 1077-3118
    Source: AIP Digital Archive
    Topics: Physics
    Notes: Single wall carbon nanotube (SWNT) bundles protruding from the SWNT layers on self-aligned Sn apexes were brought to a distance of 30 nm by a scanning tunneling microscope inside a transmission electron microscope. A straight bundle on the tip could be observed in situ in contact electrostatically with a looped bundle on the sample by applying tip bias voltages above 2.0 V. The bundles were welded at the nanometer size contact area by local Joule heating. © 2001 American Institute of Physics.
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  • 3
    Electronic Resource
    Electronic Resource
    College Park, Md. : American Institute of Physics (AIP)
    The Journal of Chemical Physics 102 (1995), S. 4819-4822 
    ISSN: 1089-7690
    Source: AIP Digital Archive
    Topics: Physics , Chemistry and Pharmacology
    Notes: The linear Stark effect measured in the ν2/ν4 dyad of SnH4 by Doppler-free infrared–infrared double resonance spectroscopy has been analyzed. Fifteen double resonance signals in the vibrationally excited state and 12 previously reported signals in the ground state have been fitted simultaneously to an effective Stark Hamiltonian. The centrifugal distortion moment μ0 and the two vibration-induced moments μ44 and μ24 are determined to be μ0=1.499(11)×10−5 D, μ44=−1.317(42)×10−2 D, and μ24=3.94(23)×10−2 D. © 1995 American Institute of Physics.
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  • 4
    Electronic Resource
    Electronic Resource
    College Park, Md. : American Institute of Physics (AIP)
    The Journal of Chemical Physics 114 (2001), S. 6142-6150 
    ISSN: 1089-7690
    Source: AIP Digital Archive
    Topics: Physics , Chemistry and Pharmacology
    Notes: The A˜ 3Πi←X˜ 3Σ− electronic transition of a carbon-chain molecule CCS has been observed for the first time by laser induced fluorescence spectroscopy. The species was generated with a pulsed discharge of 0.5% C2H2 and 0.5% CS2 diluted in Ar via a pulsed supersonic jet. A number of bands in the 690–675 nm and 600–615 nm regions (14 500–14 800, 16 200–16 600 cm−1) were observed and assigned to those of CCS using ground state combination differences. Three of the bands in each region were found to belong to the three A˜ 3Πi spin-orbit components of the A˜ 3Πi←X˜ 3Σ− transition (Tv=14 662.777(4) and 16 423 cm−1), and an effective set of rotational constants for the upper states were obtained. The higher energy band was heavily perturbed, preventing the determination of effective constants for this band. These bands have been tentatively assigned as two successive bands in the A˜ 3Πi(n,0,0) progression with a resultant effective value of 1760 cm−1 for the A˜ 3Πi ν1 vibrational fundamental. Dispersed fluorescence spectra from the A˜ 3Πi←X˜ 3Σ− band of CCS have also been observed, yielding definitive experimental information on the vibrational structure of the X˜ 3Σ− ground state for the first time. The three harmonic frequencies were determined to be 1708.2(40) cm−1, 862.5(19) cm−1, and 269.3(13) cm−1 for ω1 (CC stretch), ω2 (CS stretch), and ω3 (CCS bend), respectively. © 2001 American Institute of Physics.
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