Institute of Physics of Molecules and Crystals, Russian Academy of Sciences, October Avenue 151, 450075 Ufa, Russia.
J Phys Chem A. 2012 Jan 12;116(1):761-6. doi: 10.1021/jp210224j. Epub 2011 Dec 28.
The empty-level structure of the 1,4,5,8-naphthalenetetracarboxylic dianhydride (NTCDA) molecule is characterized by means of dissociative electron attachment (DEA) experiments in the gas phase coupled with DFT calculations. Distinct maxima in the anion currents generated by electron attachment to NTCDA, as a function of incident electron energy, are ascribed to capture of incident electrons into empty orbitals, i.e., the process referred to as shape resonance. The empty orbital energies of gas-phase NTCDA shifted to 1.2 eV lower energy reproduce satisfactorily the maxima of the unoccupied electronic states of a multilayer NTCDA film measured by means of the very low energy electron diffraction method and the total current spectroscopy measurement scheme. The present results indicate that the empty levels of individual NTCDA molecules are stabilized in the solid state, but their relative energies remain nearly unaltered. The stabilization energy in multilayer film of NTCDA molecules is likely due to attractive polarization forces. Fragmentation of the gas-phase NTCDA temporary parent anions via the DEA mechanism, the other issue of the present investigation, leads to the rupture of the bonds between the end carbonyl groups and the naphthalene core, and occurs at incident electron energies above 2 eV. Possible chemical changes in condensed NTCDA molecules initiated by the DEA mechanism under conditions of electron transport through the film are discussed.
1,4,5,8-萘四羧酸二酐(NTCDA)分子的空能级结构通过气相中的离解电子俘获(DEA)实验与 DFT 计算相结合来表征。作为电子附着到 NTCDA 的函数,在入射电子能量下,阴离子电流产生的明显最大值归因于将入射电子捕获到空轨道中,即所谓的形状共振过程。气相 NTCDA 的空轨道能量向 1.2 eV 的较低能量移动,令人满意地再现了通过非常低能电子衍射方法和总电流光谱测量方案测量的多层 NTCDA 膜中未占据电子态的最大值。目前的结果表明,单个 NTCDA 分子的空能级在固态中稳定,但它们的相对能量几乎不变。NTCDA 分子的多层膜中的稳定能可能是由于吸引力的极化力。气相 NTCDA 临时母体阴离子通过 DEA 机制的碎裂,是本研究的另一个问题,导致羰基末端与萘核之间的键断裂,并在入射电子能量高于 2 eV 时发生。讨论了在通过膜传输电子的条件下,DEA 机制引发的凝聚 NTCDA 分子中的可能化学变化。