材料科学
高氯酸铵
氧化还原
催化作用
法拉第效率
电化学
X射线光电子能谱
热分解
电子转移
化学工程
价(化学)
热稳定性
电极
电催化剂
纳米技术
无机化学
密度泛函理论
能量转换
工作(物理)
电化学能量转换
热的
功率密度
电子传输链
光化学
储能
作者
Hao Wang,Hongli Mi,Jialin Li,Jinxi Han,Junqing Wang,Yaoxing Ma,Zhengqiang Xia,S. Chen,王晓玲,Qi Yang
标识
DOI:10.1021/acsami.5c18003
摘要
The development of multifunctional catalytic platforms that reconcile high energy density with environmental sustainability presents a significant challenge in materials science. Herein, we report a rare mixed-valence Cu(II)/Cu(III) energetic metal-organic framework (EMOF), {[Cu(II)Cu(III)2(HBTT)(BTT)Cl3(H2O)4]·H2O}n (denoted as CuBTT), as a dual-functional catalyst for both ammonium perchlorate (AP) thermolysis and electrochemical CO2 reduction (ECO2R). CuBTT exhibits remarkable structural robustness, thermal safety, and low sensitivity, enabling practical deployment. The dual catalytic prowess originates from its special mixed-valence Cu(II)/Cu(III) interfaces, which enable efficient interfacial electron modulation and stepwise electron transfer tailored to the specific demands of each reaction. This unique mechanism, unequivocally validated by X-ray photoelectron spectroscopy (XPS) analysis, demonstrates distinct redox behaviors: in AP thermolysis, CuBTT acts as a multielectron redox shuttle, dramatically lowering the high-temperature decomposition (HTD) peak by 127.2 °C and boosting the total heat release by 81.6%; in ECO2R, its dynamic valence cycling facilitates C-C coupling, achieving high Faradaic efficiencies for CO (42.4%), C2H5OH (23.4%), and CH4 (3.3%) at -0.6 V vs RHE. CuBTT also demonstrates excellent stability (>60 h) and rapid kinetics (Tafel slope: 69 mV dec-1). This work highlights valence engineering via interfacial electron modulation as a powerful strategy for designing multifunctional materials and positioning CuBTT as a promising platform for sustainable energy and environmental applications.
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