McKenna Keith P, Sushko Peter V, Shluger Alexander L
Department of Physics and Astronomy, University College London, Gower Street, London WC1E 6BT, UK.
J Am Chem Soc. 2007 Jul 11;129(27):8600-8. doi: 10.1021/ja071602m. Epub 2007 Jun 15.
The electron- and hole-trapping and optical properties of a wide variety of interfaces between MgO nanocrystallites are investigated for the first time using a quantum-mechanical embedded-cluster method and time-dependent density functional theory. We conclude that delocalized holes can be transiently trapped at a large number of places within a powder. However, it is more energetically favorable for holes to trap on low-coordinated anions on the nanocrystallite surface, forming O- species. Electrons are trapped at few interfaces but are readily trapped by surface kink and corner sites. Contrary to common perception, our calculations of optical absorption spectra indicate that a variety of features buried within a powder can be exited with photon energies less than 5 eV, usually used to selectively excite low-coordinated surface sites.
首次使用量子力学嵌入簇方法和含时密度泛函理论研究了MgO纳米微晶之间各种界面的电子和空穴俘获以及光学性质。我们得出结论,离域空穴可以在粉末中的大量位置被瞬时俘获。然而,空穴俘获在纳米微晶表面低配位阴离子上形成O-物种在能量上更有利。电子在少数界面被俘获,但很容易被表面扭结和拐角位置俘获。与通常的认识相反,我们对光吸收光谱的计算表明,粉末中埋藏的各种特征可以被能量小于5 eV的光子激发,通常用于选择性激发低配位表面位置。