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丙烷氧化脱氢中B═O键的原位形成及其作为烷氧基自由基捕获剂的研究:一项计算研究

In Situ Formation of B═O Bond in Oxidative Dehydrogenation of Propane and as a Hunter for Alkoxyl Radicals: A Computational Study.

作者信息

Chen Weixi, Liu Yuchen, Liu Ziyi, Zhu Lihan, Wang Dongqi

机构信息

State Key Laboratory of Fine Chemicals, Liaoning Key Laboratory for Catalytic Conversion of Carbon Resources, School of Chemical Engineering, School of Chemistry, Dalian University of Technology, Dalian 116024, China.

出版信息

J Phys Chem Lett. 2024 Sep 5;15(35):8984-8989. doi: 10.1021/acs.jpclett.4c02144. Epub 2024 Aug 26.

Abstract

B═O multiple bonds are fundamentally important owing to the unique property of B and its potential as a tool in catalysis. Herein by means of DFT calculations, we investigated the in situ generation of transient -B═O species in the nonmetallic inorganic boron oxides and demonstrated its superior ability to capture alkoxyl radicals under the conditions of oxidative dehydrogenation of propane (ODHP). Boron-containing materials are emerging as promising catalysts for ODHP, while an extensive understanding of the underlying mechanisms remains challenging. Through systematic mechanistic and characterization calculations, we show the feasibility for the presence of -B═O species under ODHP conditions and propose that its π nature dictates its inertness in the C-H activation of propane (Δ = 57 kcal/mol) but offers its strong ability in capturing alkoxyl radicals (barrierless with Δ = -30 kcal/mol), which can then transform to the ·CHOH radical. This explains the observation of enol in the experimental study. This specific behavior of the -B═O species makes it one of the key players in the complex reaction network of ODHP and also implicates the rational design of scavengers for reactive oxygen species (ROS) and other active oxygenated species.

摘要

B═O多重键由于硼的独特性质及其作为催化工具的潜力而具有根本重要性。在此,我们通过密度泛函理论(DFT)计算,研究了非金属无机硼氧化物中瞬态 -B═O物种的原位生成,并证明了其在丙烷氧化脱氢(ODHP)条件下捕获烷氧基自由基的卓越能力。含硼材料正成为ODHP有前景的催化剂,然而对其潜在机制的全面理解仍然具有挑战性。通过系统的机理和表征计算,我们展示了在ODHP条件下 -B═O物种存在的可行性,并提出其π性质决定了它在丙烷C-H活化中的惰性(Δ = 57 kcal/mol),但赋予其捕获烷氧基自由基的强大能力(无障碍,Δ = -30 kcal/mol),随后可转化为·CHOH自由基。这解释了实验研究中烯醇的观察结果。-B═O物种的这种特殊行为使其成为ODHP复杂反应网络中的关键参与者之一,也暗示了活性氧(ROS)和其他活性氧化物种清除剂的合理设计。

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