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Molecular beam measurements and Monte Carlo simulations of the kinetics of N2O decomposition on Rh(111) single-crystal surfaces

机译:Rh(111)单晶表面上N2O分解动力学的分子束测量和蒙特卡洛模拟

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The kinetics of N2O decomposition on Rh(111) single-crystal surfaces were investigated both experimentally by isothermal molecular beam measurements and theoretically using a Monte Carlo algorithm. The present work was directed to the understanding of two unusual observations derived from our previous work on this system, namely, (1) the lower rates for N2O decomposition seen at higher reaction temperatures, and (2) the lower total nitrogen yields and final oxygen surface coverages that accompany that behavior. Experimentally, it was determined here that after the rhodium surface is rendered inactive by N2O decomposition at high (520 K) temperatures, significant activity is still possible at lower (350 K) temperatures. The Monte Carlo simulations explain these observations by assuming that the surface sites required for the activation of adsorbed N2O increase in size with increasing reaction temperature. (c) 2006 American Institute of Physics.
机译:通过等温分子束测量实验和理论上使用蒙特卡洛算法研究了Rh(111)单晶表面上N2O分解的动力学。当前的工作是针对从我们先前对该系统的工作中得出的两个不寻常的观察结果的理解,即:(1)在较高的反应温度下观察到的N2O分解速率较低,(2)总氮产率和最终氧含量较低伴随该行为的表面覆盖。实验确定,在高温(520 K)下通过N2O分解使铑表面失去活性之后,在较低(350 K)的温度下仍可能具有明显的活性。蒙特卡洛模拟通过假设活化的N2O活化所需的表面位置随着反应温度的升高而增大来解释这些发现。 (c)2006年美国物理研究所。

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