Sulfonic acid-modified MOFs as heterogeneous bifunctional catalysts for ethylene oligomerization at room temperature without cocatalysts

IF 4.4 3区 化学 Q2 CHEMISTRY, PHYSICAL
Yao Ning, Yuqi Yang, Dongming Shan, Shuxing Mei, Yibai Yan, Linjie Ding, Ying Zhang
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Abstract

Ethylene oligomerization plays an important role in industrial production. However, when taking the traditional non-metallocene catalysts and MOF catalysts for ethylene oligomerization, they typically require methylaluminoxane (MAO), aluminum alkyl, and other cocatalysts, which is neither environmentally friendly nor helpful in reducing production costs. Here, three sulfonic acid-modified MOFs (SA/MIL-101(Cr), UiO-66-NS and MIL-101(Cr)-NS) were prepared and used as catalysts for ethylene oligomerization at room temperature without using any cocatalysts. All of them exhibited excellent catalytic performances (e.g., 10SA/MIL-101(Cr), 21 953 g molCr−1 h−1, with C8 selectivity greater than 70.32%), and their oligomerization activity increased by almost tenfold compared to unmodified MOFs. The presence of Lewis acid (L acid) and Brønsted acid (B acid) sites in modified MOFs is the key to improved performances. In particular, the presence of B acid weakens the role of metal clusters and ligands in MOFs, making it easier for metal centers to bind to ethylene molecules for further oligomerization. This work first demonstrates that bifunctional MOF catalysts can catalyze ethylene tetramerization under mild conditions without cocatalysts.

Abstract Image

磺酸修饰的 MOFs 作为异相双功能催化剂,用于室温下乙烯低聚而无需助催化剂
乙烯低聚在工业生产中发挥着重要作用。然而,采用传统的非茂金属催化剂和 MOF 催化剂进行乙烯低聚时,通常需要甲基铝氧烷(MAO)、烷基铝等助催化剂,既不环保,也不利于降低生产成本。本文制备了三种磺酸修饰的 MOFs(SA/MIL-101(Cr)、UiO-66-NS 和 MIL-101(Cr)-NS),并将其用作乙烯在室温下进行低聚反应的催化剂,而无需使用任何助催化剂。它们都表现出优异的催化性能(例如,10SA/MIL-101(Cr),21 953 g molCr-1 h-1,C8 选择性大于 70.32%),其低聚活性比未改性 MOFs 提高了近 10 倍。改性 MOF 中路易斯酸(L 酸)和布氏酸(B 酸)位点的存在是提高性能的关键。特别是,B 酸的存在削弱了 MOF 中金属簇和配体的作用,使金属中心更容易与乙烯分子结合,从而进一步低聚。这项研究首次证明了双功能 MOF 催化剂可以在温和条件下催化乙烯的四聚合反应,而不需要助催化剂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Catalysis Science & Technology
Catalysis Science & Technology CHEMISTRY, PHYSICAL-
CiteScore
8.70
自引率
6.00%
发文量
587
审稿时长
1.5 months
期刊介绍: A multidisciplinary journal focusing on cutting edge research across all fundamental science and technological aspects of catalysis. Editor-in-chief: Bert Weckhuysen Impact factor: 5.0 Time to first decision (peer reviewed only): 31 days
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