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Conversion of large-amplitude vibration to electron excitation at a metal surface

机译:大幅度振动转换为金属表面的电子激发

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Gaining insight into the nature and dynamics of the transition state is the essence of mechanistic investigations of chemical reactions(1), yet the fleeting configuration when existing chemical bonds dissociate while new ones form is extremely difficult to examine directly(2). Adiabatic potential-energy surfaces - usually derived using quantum chemical methods(3) that assume mutually independent nuclear and electronic motion(4) - quantify the fundamental forces between atoms involved in reaction and thus provide accurate descriptions of a reacting system as it moves through its transition state(5,6). This approach, widely tested for gas-phase reactions(7), is now also commonly applied to chemical reactions at metal surfaces(8). There is, however, some evidence calling into question the correctness of this theoretical approach for surface reactions: electronic excitation upon highly exothermic chemisorption has been observed(9), and indirect evidence suggests that large-amplitude vibrations of reactant molecules can excite electrons at metal surfaces(10,11). Here we report the detection of 'hot' electrons leaving a metal surface as vibrationally highly excited NO molecules collide with it. Electron emission only occurs once the vibrational energy exceeds the surface work function, and is at least 10,000 times more efficient than the emissions seen in similar systems where large-amplitude vibrations were not involved(12-18). These observations unambiguously demonstrate the direct conversion of vibrational to electronic excitation, thus questioning one of the basic assumptions currently used in theoretical approaches to describing bond-dissociation at metal surfaces.
机译:深入了解过渡态的性质和动力学是化学反应机理研究的本质(1),但是,现有化学键解离而新的化学键形成时的短暂构型则极难直接检查(2)。绝热势能面-通常使用假设相互独立的核运动和电子运动(4)的量子化学方法(3)得出-量化参与反应的原子之间的基本力,从而提供反应体系在其移动过程中的准确描述过渡状态(5,6)。这种方法经过了气相反应的广泛测试(7),现在也普遍应用于金属表面的化学反应(8)。但是,有一些证据质疑这种理论方法对表面反应的正确性:已经观察到高放热化学吸附引起的电子激发(9),间接证据表明反应物分子的大幅度振动会激发金属上的电子表面(10,11)。在这里,我们报告检测到由于振动高度激发的NO分子与金属表面碰撞而离开金属表面的“热”电子。仅当振动能量超过表面功函数时才发生电子发射,并且其效率至少是在不涉及大振幅振动的类似系统中观察到的效率的10,000倍(12-18)。这些观察清楚地表明了振动向电子激发的直接转换,从而质疑了目前用于描述金属表面键解离的理论方法的基本假设之一。

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