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用于氨制氢的镍基结构化催化剂的自上而下合成法

Top-Down Syntheses of Nickel-Based Structured Catalysts for Hydrogen Production from Ammonia.

作者信息

Lee Yu-Jin, Cha Junyoung, Kwak Yeonsu, Park Yongha, Jo Young Suk, Jeong Hyangsoo, Sohn Hyuntae, Yoon Chang Won, Kim Yongmin, Kim Kwang-Bum, Nam Suk Woo

机构信息

Center for Hydrogen and Fuel Cell Research, Korea Institute of Science and Technology, Seoul 02792, Republic of Korea.

Department of Material Science & Engineering, Yonsei University, Seoul 03722, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2021 Jan 13;13(1):597-607. doi: 10.1021/acsami.0c18454. Epub 2020 Dec 21.

Abstract

We report the fabrication and catalytic performance evaluation of highly active and stable nickel (Ni)-based structured catalysts for ammonia dehydrogenation with nearly complete conversion using nonprecious metal catalysts. Low-temperature chemical alloying (LTCA) followed by selective aluminum (Al) dealloying was utilized to synthesize foam-type structured catalysts ready for implementation in commercial-scale catalytic reactors. The crystalline phases of Ni-Al alloy (NiAl, NiAl, or both) in the near-surface layer were controlled by tuning the alloying time. The best-performing catalyst was obtained from a Ni foam substrate with a NiAl/NiAl overlayer synthesized by LTCA at 400 °C for 20 h. The developed Ni catalyst exhibited an activity enhancement of 10-fold over the nontreated Ni foam and showed outstanding activities of 15 800 molmolh (TOF: 4.39 s) and 19 978 molmolh (TOF: 5.55 s) at 550 and 600 °C, respectively. This performance is unprecedented compared with previously reported Ni-based ammonia cracking catalysts with higher-end performance (TOFs of 0.08-1.45 s at 550 °C). Moreover, this catalyst showed excellent stability for 100 h at 600 °C while discharging an extremely low NH concentration of 1034 ppm. The NH concentration in the exhaust gas was further reduced to 690 and 271 ppm at 700 and 800 °C, respectively, while no deactivation was observed at these elevated temperatures. Through material characterizations, we clarified that controlling the degree of Al alloying in the outermost layer of Ni is a crucial factor in determining the activity and stability because residual Al possibly modifies the electronic structure of Ni for enhanced activity as well as transforming to acidic alumina for increased intrinsic activity and stability.

摘要

我们报道了用于氨脱氢反应的高活性和稳定的镍(Ni)基结构化催化剂的制备及其催化性能评估,该催化剂使用非贵金属催化剂可实现近乎完全的转化。采用低温化学合金化(LTCA)然后选择性脱铝(Al)的方法来合成泡沫型结构化催化剂,以便在商业规模的催化反应器中应用。通过调整合金化时间来控制近表层中Ni-Al合金(NiAl、NiAl或两者皆有)的晶相。性能最佳的催化剂是由泡沫镍基底制备的,其具有通过在400℃下进行20小时LTCA合成的NiAl/NiAl覆盖层。所开发的Ni催化剂的活性比未处理的泡沫镍提高了10倍,在550℃和600℃时分别表现出出色的活性,即15800 molmolh(TOF:4.39 s)和19978 molmolh(TOF:5.55 s)。与先前报道的具有较高性能(550℃时TOF为0.08 - 1.45 s)的Ni基氨裂解催化剂相比,这种性能是前所未有的。此外,该催化剂在600℃下表现出优异的稳定性,持续100小时,同时排放的NH浓度极低,为1034 ppm。在700℃和800℃时,废气中的NH浓度分别进一步降低至690 ppm和271 ppm,并且在这些升高的温度下未观察到失活现象。通过材料表征,我们阐明了控制Ni最外层中Al的合金化程度是决定活性和稳定性的关键因素,因为残余的Al可能会改变Ni的电子结构以提高活性,同时转化为酸性氧化铝以提高本征活性和稳定性。

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