Jun Hu, Meng Cui, Mei-Qing Lai, Bo-Wen Fan, Wen-Jing Yang, Hang Liu, Jian-Gang Xu, Fa-Kun Zheng, Guo-Cong Guo
Ammonium perchlorate (AP), the pivotal oxidizer in composite solid propellants, is often constrained due to its high decomposition temperature and sluggish heat release. Here, we proposed a structural co-assembly strategy which synergistically assembles energetic moieties and reduction units. Through this approach, two 2D energetic metal-organic frameworks (EMOFs), {Zn2(datz)2(CBH)2·H2O}n 1 and {Cd(Hdatz)2(CBH)2}n 2 (Hdatz = 3,5-diamino-1,2,4-triazole, CBH = cyanoborohydride), were successfully synthesized. Compared with pure AP, 5 wt.% of 1 into AP (5%-1-AP) lowered the decomposition temperature by 116°C, and reduced the apparent activation energy (Ea) to 84.5 kJ·mol-1, thereby enabling highly efficient low-barrier catalysis. Notably, the catalyst induces a dramatic "energy concentration" effect, narrowing the decomposition peak width to 1/14 of pristine AP while the total heat release (Q) reaches 1.75 times that of pure AP. TG-FTIR analysis reveals intensified high-valent nitrogen oxide signals via enhanced NH3 oxidation. Theoretical calculations demonstrate that 1 binds more strongly to AP and NH3 with a lower average surface potential (Vavg) and greater polarization than 2, confirming the synergy between electron-donating CBH- and in situ ZnO in driving efficient electron transfer and concentrated energy release. This EMOFs design demonstrates considerable potential for high-performance catalytic applications and the development of next-generation solid propellants.