化学
脱氢
氧化磷酸化
瞬态(计算机编程)
光化学
反应机理
高分子化学
活化能
氧气
立体化学
作者
Leyuan Cui,Dandan Song,Ruixuan Qin,Gang Fu
摘要
The identification of the true active site in boron-catalyzed oxidative dehydrogenation of propane (ODHP) remains deeply contested. Prevailing models attempt to describe a molten or quasi-molten boron oxide phase using static, high-energy BO x species, yet they do not resolve a central paradox that explains how a formally nonreducible B(III) center can mediate efficient C–H activation while sustaining exceptional propylene selectivity. Here, by combining exhaustive thermodynamic screening of 9700 BO x /Ni(111) configurations with enhanced sampling ab initio molecular dynamics (AIMD), we show that activity is mediated not by any pre-existing structure but by transiently accessible overcoordinated [BO 4 ] generated through continuous [BO 3 ] ⇌ [BO 4 ] interconversions. This dynamic sp 2 -to-sp 3 rehybridization provides crucial coordination-charge compensation, acting as an electronic buffer that allows the strictly +3 boron center to activate C–H bonds without localized reduction. Furthermore, mapping the catalytic cycle provides a mechanistic framework for the selectivity paradox. The structurally adaptive boron centers thermodynamically favor the adsorption of gas-phase oxygenated radicals, suppressing chain propagation and thereby preventing deep oxidation to CO x . Finally, AIMD trajectories and free-energy barriers across N-doped, C-doped, metal-free, and h-BN-derived BO x systems show that this coordination-fluxionality mechanism is general across the BO x systems examined here, shifting catalyst design from identifying a single “active site” to engineering the thermodynamic accessibility and lifetime of transient coordination states.
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