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调节 Ni-CNT 相互作用对氧功能化 CNTs 负载的 Mn 促进 Ni 纳米催化剂用于 CO 选择加氢的影响。

Regulation of Ni-CNT Interaction on Mn-Promoted Nickel Nanocatalysts Supported on Oxygenated CNTs for CO Selective Hydrogenation.

机构信息

Department of Chemical Engineering , Sichuan University , Chengdu 610065 , China.

Beijing Key Laboratory of Green Chemical Reaction Engineering and Technology, Department of Chemical Engineering , Tsinghua University , Beijing 100084 , China.

出版信息

ACS Appl Mater Interfaces. 2018 Dec 5;10(48):41224-41236. doi: 10.1021/acsami.8b04220. Epub 2018 Nov 13.

Abstract

Mn-promoted Ni nanoparticles (NPs) supported on oxygen-functionalized carbon nanotubes (CNTs) were synthesized for CO hydrogenation to methane. This novel metal-carbon catalytic system was characterized by both experimental and computational studies. An anomalous metal-support interaction mode (i.e., a higher temperature would lead to a weakened Ni-CNT interaction) was observed. Deep investigation confirmed that surface oxygen groups (SOGs) on CNTs played a key role in tuning the Ni-CNT interaction. We proposed that high calcination temperature would firstly lead to the decomposition of SOGs (>400 °C), then causing a loss of anchoring sites and the anchoring effect of SOGs on Ni NPs, thus cutting off the connection between interfacial Ni atoms and CNT body, resulting in the migration and coalescence of fine flat Ni NPs into larger sphere ones at 550 °C (geometric effect). Density functional theory calculation study clarified that this kind of anchoring effect stemmed from the formation of covalent bonding between the interfacial Ni atom and C or O elements of SOGs, causing the electrons to be transferred from Ni atoms to CNT support because of the intrinsic electronegativity of -COOH (electronic effect). Besides, Mn promotion notably boosts the activity compared with unpromoted catalysts, which was irrelevant to the size effect, but enhanced CO adsorption and conversion according to the result of CO-temperature programmed desorption and transient response experiment. The optimized NiMn350 catalyst endowed with Mn promotion and robust Ni-CNT interaction showed both high activity and sintering resistance for more than 140 h. Our findings paved the way to reasonably design the metal-carbon catalyst with both high activity and stability.

摘要

Mn 促进的负载在氧功能化碳纳米管(CNTs)上的 Ni 纳米颗粒(NPs)被用于 CO 加氢制甲烷反应。通过实验和计算研究对这种新型金属-碳催化体系进行了表征。观察到一种异常的金属-载体相互作用模式(即较高的温度会导致 Ni-CNT 相互作用减弱)。深入的研究证实,CNTs 上的表面氧基团(SOGs)在调节 Ni-CNT 相互作用方面起着关键作用。我们提出,较高的煅烧温度首先会导致 SOGs 的分解(>400°C),从而导致锚定位点的损失以及 SOGs 对 Ni NPs 的锚定效应,从而切断界面 Ni 原子与 CNT 体之间的连接,导致细小的扁平 Ni NPs 在 550°C 时迁移和聚合并变成更大的球形(几何效应)。密度泛函理论计算研究阐明了这种锚定效应源于界面 Ni 原子与 SOGs 的 C 或 O 元素之间形成的共价键,由于-COOH 的固有电负性(电子效应),导致电子从 Ni 原子转移到 CNT 载体。此外,与未促进的催化剂相比,Mn 促进剂显著提高了催化剂的活性,这与尺寸效应无关,而是根据 CO-程序升温脱附和瞬态响应实验的结果,增强了 CO 的吸附和转化。具有 Mn 促进剂和稳定 Ni-CNT 相互作用的优化 NiMn350 催化剂表现出了超过 140 小时的高活性和抗烧结能力。我们的发现为合理设计具有高活性和稳定性的金属-碳催化剂铺平了道路。

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