Lu Zhenpu, Luo Ran, Chen Sai, Fu Donglong, Sun Guodong, Zhao Zhi-Jian, Pei Chunlei, Gong Jinlong
Key Laboratory for Green Chemical Technology of Ministry of Education, School of Chemical Engineering and Technology, Tianjin University China
Collaborative Innovation Center of Chemical Science and Engineering Tianjin 300072 China.
Chem Sci. 2023 Dec 15;15(3):1046-1050. doi: 10.1039/d3sc04310j. eCollection 2024 Jan 17.
The strong promotion effects of alkali/alkaline earth metals are frequently reported for heterogeneous catalytic processes such as propane dehydrogenation (PDH), but their functioning principles remain elusive. This paper describes the effect of the addition of calcium (Ca) on reducing the deactivation rate of platinum-tin (Pt-Sn) catalyzed PDH from 0.04 h to 0.0098 h at 873 K under a WHSV of 16.5 h of propane. The Pt-Sn-Ca catalyst shows a high propylene selectivity of >96% with a propylene production rate of 41 mol (g h) and ∼1% activity loss after regeneration. The combination of characterization and DFT simulations reveals that Ca acts as a structural promoter favoring the transition of Sn in the parent catalyst to Sn during reduction, and the latter is an electron donor that increases the electron density of Pt. This greatly suppresses coke formation from deep dehydrogenation. Moreover, it was found that Ca promotes the formation of a highly reactive and sintering-resistant sub-nano Pt-Sn alloy with a diameter of approximately 0.8 nm. These lead to high activity and selectivity for the Pt-Sn-Ca catalyst for PDH.
碱金属/碱土金属对丙烷脱氢(PDH)等多相催化过程具有显著的促进作用,这一点已被频繁报道,但其作用原理仍不清楚。本文描述了添加钙(Ca)对降低铂锡(Pt-Sn)催化PDH失活速率的影响,在873K、丙烷质量空速为16.5 h⁻¹的条件下,失活速率从0.04 h⁻¹降至0.0098 h⁻¹。Pt-Sn-Ca催化剂显示出>96%的高丙烯选择性,丙烯产率为41 mol/(g h),再生后活性损失约1%。表征和密度泛函理论(DFT)模拟相结合表明,Ca作为结构促进剂,有利于母体催化剂中的Sn在还原过程中转变为Sn⁰,后者是电子供体,可增加Pt的电子密度。这极大地抑制了深度脱氢导致的积炭形成。此外,发现Ca促进形成直径约为0.8 nm的高活性且抗烧结的亚纳米Pt-Sn合金。这些因素使得Pt-Sn-Ca催化剂对PDH具有高活性和选择性。