论文标题

最佳催化剂电子构型的动力学表达:氨分解的情况

Kinetic Expression for Optimal Catalyst Electronic Configuration: The Case of Ammonia Decomposition

论文作者

Turaeva, Nigora, Fushimi, Rebecca, Yablonsky, Gregory

论文摘要

提出并分析了有关金属催化剂的电子特性的新的氨分解稳态动力学模型。该模型基于经典的Temkin-ERTL机制,并通过实施催化剂的游离电子来改变吸附物种的化学性质,根据Wolkenstein电子理论进行了修改。 Wolkenstein原始理论仅适用于半导体,但通过包括D波段模型,电子理论可以扩展到金属。对于包括电子步骤在内的简化和完整反应机制,我们提出一个稳态速率方程,其中对金属的费米水平的依赖性产生了火山形的依赖性。根据动力学模型,催化剂的催化剂水平越来越高,它使用吸附的氮分子接近抗denting状态,将增加中性氮分子的比例并增强其解吸。同时,通过参与吸附物键中的其他游离催化剂电子的参与,氨分子的强烈化学吸收很容易进​​行。结果,反应速率得到提高并达到其最大值。进一步提高的催化剂水平与氨分子接近抗体状态的催化剂水平将导致较小的负电荷氨分子的比例较小,而脱水较小。同时,中性氮分子的解吸无损害。结果,反应速率降低。将详细的动力学模型与对铁,钴和COFE双金属催化剂的氨分解的最新实验测量进行了比较。

A new steady-state kinetic model of ammonia decomposition is presented and analyzed regarding the electronic properties of metal catalysts. The model is based on the classical Temkin-Ertl mechanism and modified in accordance with Wolkenstein electronic theory by implementing participation of free electrons of the catalyst to change the chemical nature of adsorbed species. Wolkenstein original theory only applied to semiconductors but by including the d-band model, the electronic theory can be extended to metals. For both simplified and full reaction mechanisms, including electronic steps, we present a steady-state rate equation where the dependence on the Fermi level of the metal creates a volcano-shaped dependence. According to the kinetic model, an increasing Fermi level of the catalyst, that approaching the antibonding state with adsorbed nitrogen molecules, will increase the fraction of neutral nitrogen molecules and enhance their the desorption. Concurrently, strong chemisorption of ammonia molecules proceeds easily through participation of additional free catalyst electrons in the adsorbate bond. As a result, the reaction rate is enhanced and reaches its maximum value. A further increasing Fermi level of the catalyst that approaches the antibonding state with ammonia molecules will result in a smaller fraction of negatively charged ammonia molecules and less dehydrogenation. Concurrently, the desorption of neutral nitrogen molecules occurs without impairment. As a result, the reaction rate decreases. The detailed kinetic model is compared to recent experimental measurements of ammonia decomposition on iron, cobalt and CoFe bimetallic catalysts.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源