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揭示微米级Co-ZIF-L通过二维结构诱导的机理反转对RDX热分解具有前所未有的催化能力。

Unveiling the unprecedented catalytic capability of micro-sized Co-ZIF-L for the thermal decomposition of RDX by 2D-structure-induced mechanism reversal.

作者信息

Ren Jia-Tong, Wei Ding, Tan Bo-Jun, Hu Rui, Gao Yu-Chen, Wang Xiao-Hong, Yang Wei-Tao

机构信息

Xi'an Modern Chemistry Research Institute Xi'an Shaanxi 710065 China

出版信息

RSC Adv. 2023 Apr 24;13(19):12677-12684. doi: 10.1039/d3ra01551c.

Abstract

Developing MOF-based catalysts with superior catalytic properties for the thermal decomposition of cyclotrimethylenetrinitramine (RDX) is significant for the application of novel and efficient combustion catalysts oriented to RDX-based propellants with excellent combustion performance. Herein, micro-sized Co-ZIF-L with a star-like morphology (SL-Co-ZIF-L) was found to exhibit unprecedented catalytic capability for the decomposition of RDX, which can lower the decomposition temperature of RDX by 42.9 °C and boost the heat release by 50.8%, superior to that of all the ever-reported MOFs and even ZIF-67, which has similar chemical composition but a much smaller size. In-depth mechanism study from both experimental and theoretical views reveals that the weekly interacted 2D layered structure of SL-Co-ZIF-L could activate the exothermic C-N fission pathway for the decomposition of RDX in the condensed phase, thus reversing the commonly advantageous N-N fission pathway and promoting the decomposition process in the low-temperature stage. Our study reveals the unusually superior catalytic capability of micro-sized MOF catalysts and sheds light on the rational structure design of catalysts used in micromolecule transformation reactions, typically the thermal decomposition of energetic materials.

摘要

开发具有优异催化性能的基于金属有机框架(MOF)的催化剂用于环三亚甲基三硝胺(RDX)的热分解,对于面向具有优异燃烧性能的基于RDX的推进剂的新型高效燃烧催化剂的应用具有重要意义。在此,发现具有星状形态的微米级Co-ZIF-L(SL-Co-ZIF-L)对RDX的分解表现出前所未有的催化能力,它可以将RDX的分解温度降低42.9℃,并使热释放提高50.8%,优于所有已报道的MOF,甚至优于具有相似化学成分但尺寸小得多的ZIF-67。从实验和理论角度进行的深入机理研究表明,SL-Co-ZIF-L的弱相互作用二维层状结构可以激活凝聚相中RDX分解的放热C-N裂变途径,从而逆转通常有利的N-N裂变途径,并促进低温阶段的分解过程。我们的研究揭示了微米级MOF催化剂异常优异的催化能力,并为小分子转化反应(特别是含能材料的热分解)中使用的催化剂的合理结构设计提供了线索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a110/10123532/4553d0b1914a/d3ra01551c-f1.jpg

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