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Stefan-S Jester

Publications and source records attributed to Stefan-S Jester.

2 recordsLinked to original sources

Deuteration-induced scission of C58 oligomers.

The reaction of solid C(58) films with atomic deuterium to yield deuterofullerenes, C(58)D(x), has been investigated by thermal desorption spectroscopy coupled with mass spectrometric detection, ultraviolet photoionization spectroscopy (21.2 eV), and atomic force microscopy (AFM). The average composition of the deuterofullerenes created depends on deuterium dose, beam flux, and surface temperature. Low deuterium exposures at room temperature yield predominantly C(58)D(6-8) cages. Saturation exposures at room temperature yield mass spectra peaked at C(58)D(26). After saturation exposures at elevated surface temperatures (approximately 500 K), the (subsequently) desorbed material reveals a comparatively narrow mass spectral distribution centered at C(58)D(30). Deuteration is associated with cleavage of covalent cage-cage bonds in the starting C(58) oligomer material, as evidenced by a considerable lowering of the sublimation energies of C(58)D(x) compared to desorption of C(58) desorbed from pure oligomer films. Correspondingly, AFM images reveal a D-induced, thermally activated transition from dendritic C(58) oligomer islands into smooth-rimmed islands composed of deuterated cages. Deuterated films exhibit a significantly lower work function than bare C(58) films. Progressing deuteration also gradually raises the surface ionization potential.

Journal Article↗

Solid C58 films.

A new solid material has been created in ultra high vacuum by utilizing the aggregation process of C58 molecules deposited onto highly oriented pyrolytic graphite from a mass selected low-energy ion beam comprising C58+. Cluster fluxes of up to 3x10(11) ions s-1 cm-2 with impinging kinetic energies of 6+/-0.5 eV were typically applied. Growth of the solid C58 phase proceeds according to the cluster-aggregation-based Volmer-Weber scenario where initially ramified 2D islands transform into 3D pyramid-like structures at higher coverages. The C58 films created exhibit much higher thermal stability than the C60 solid phase. Sublimation of C58 sets in at a temperature of 700 K. Ultraviolet photoionization spectra (He I, 21.2 eV) yield a molecular ionization potential in the range between 6.6 and 7 eV. Density functional and Hartree-Fock theories suggest that the formation of C58 dimers and higher multimers upon deposition/aggregation gives rise to the high thermal stability and unique electronic properties of this material.

Biomedical Engineering↗