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首页> 外文期刊>ChemCatChem >Hollow Nickel-Cobalt Layered Double Hydroxide Supported Palladium Catalysts with Superior Hydrogen Evolution Activity for Hydrolysis of Ammonia Borane
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Hollow Nickel-Cobalt Layered Double Hydroxide Supported Palladium Catalysts with Superior Hydrogen Evolution Activity for Hydrolysis of Ammonia Borane

机译:中空镍 - 钴层状双氢氧化物负载钯催化剂,具有优异的氢进化活性,用于水解氨硼烷

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Although ammonia borane (NH3BH3, AB) has been identified as an excellent hydrogen-storage medium, the development of a highly active catalyst that can function under mild conditions for controllable hydrogen release is still a great challenge. The synergistic effect induced by interactions between metal nanoparticles and a support has been widely applied in thermocatalytic conversion processes. In this work, Pd nanoparticles (NPs) highly dispersed on hollow NiCo layered double hydroxide (LDH) were designed for efficient hydrogen generation from AB at room temperature. During the hydrolytic dehydrogenation of AB, Pd/alpha-LDH and Pd/beta-LDH exhibited catalytic activities with total turnover frequency (TOF) values of 49.5 and 28.1min(-1) with activation energy (E-a) values of 20.56 and 37.56kJmol(-1), respectively, at 298K; thus, these catalysts outperform most Pd-based catalysts. The improved catalytic effect was attributed to the controllable size and fine distribution of the Pd NPs and the collaborative effect provided by the hydroxide of -LDH and the intercalated anions (HO-). This catalysts design principle can be easily transferred to other catalyst research fields for energy-conversion and -storage purposes.
机译:尽管已经鉴定为优异的储氢介质,但是在可控制的氢释放的温和条件下可以起作用的高活性催化剂的显影仍然是一个很大的挑战。金属纳米粒子和载体之间相互作用诱导的协同效应已广泛应用于热催化转化方法。在该工作中,设计了高度分散在中空NICO层状双氢氧化物(LDH)上的PD纳米颗粒(NPS),用于在室温下从AB获得有效的氢气。在AB的水解脱氢期间,Pd /α-LDH和Pd /β-LDH显示出催化活性,总周转频率(TOF)值49.5和28.1min(-1),活化能量(EA)值为20.56和37.56kJmol (-1)分别为298K;因此,这些催化剂优于大多数基于Pd的催化剂。改进的催化效果归因于PD NP的可控尺寸和细细分布以及由-LDH的氢氧化物提供的协作效果和插入阴离子(HO-)。该催化剂设计原理可以很容易地转移到其他催化剂研究领域以进行能量转换和古代的目的。

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