Selective hydrogenation of acetylene over Pd/β-Mo2C catalyst: Experimental and theoretical studies

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-09-09 DOI:10.1016/j.mcat.2024.114529
Qinglei Wu , Chenyang Shen , Chang-jun Liu
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Abstract

Molybdenum carbide is a promising support to tune the metal reactivity, which originates from the interaction between metal and support. In this work, Pd/β-Mo2C was prepared using a deposition-precipitation method for selective hydrogenation of acetylene. The high temperature calcination is employed to modulate the interaction between Pd and β-Mo2C. The Pd/β-Mo2C catalyst calcined at 600 °C exhibits significant promotion in selective hydrogenation, which shows 100 % acetylene conversion and 81.4 % ethylene selectivity at 160 °C. The activity promotion originates from the enhanced electronic metal-support interaction, which induces a shift of Pd 3d to higher binding energy. Besides, the Pd species become atomically dispersed after calcination. The changes in geometric and electronic structure suppress the formation of Pd hydrides, which consequently inhibits the excessive hydrogenation capacity of Pd. The structure variation also affects the adsorption of ethylene. No strong adsorbed ethylene (di-σ bonded ethylene) can be identified, which is conducive to the improvement of ethylene selectivity. Density functional theoretical (DFT) calculations confirm that Pd on β-Mo2C is positively charged. The desorption energy of C2H4* (0.78 eV) is significantly lower than that of further hydrogenation (1.45 eV), which explains the improved ethylene selectivity of the calcinated catalyst. The present study indicates calcination is an effective method to tune the activity of Pd/β-Mo2C for reactions beyond selective hydrogenation of acetylene.

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Pd/β-Mo2C 催化剂对乙炔的选择性加氢:实验和理论研究
碳化钼是一种很有希望调节金属反应活性的支撑物,这种活性源于金属与支撑物之间的相互作用。本研究采用沉积-沉淀法制备了 Pd/β-Mo2C,用于乙炔的选择性氢化。高温煅烧用于调节 Pd 和 β-Mo2C 之间的相互作用。在 600 °C 下煅烧的 Pd/β-Mo2C 催化剂在选择性加氢中表现出显著的促进作用,在 160 °C 下乙炔转化率达到 100%,乙烯选择性达到 81.4%。活性的提高源于金属与支撑物之间的电子相互作用增强,从而导致钯 3d 向更高的结合能移动。此外,煅烧后 Pd 物种变得原子分散。几何和电子结构的变化抑制了钯氢化物的形成,从而抑制了钯的过度氢化能力。结构的变化也会影响对乙烯的吸附。没有发现强吸附乙烯(二σ键乙烯),这有利于提高乙烯的选择性。密度泛函理论(DFT)计算证实,β-Mo2C 上的钯带正电。C2H4* 的解吸能(0.78 eV)明显低于进一步加氢的解吸能(1.45 eV),这就是煅烧催化剂乙烯选择性提高的原因。本研究表明,煅烧是调整 Pd/β-Mo2C 活性的一种有效方法,可用于乙炔选择性加氢以外的反应。
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CiteScore
7.20
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4.30%
发文量
567
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