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通过引入聚合物客体来保持介孔金属有机框架的孔隙率。

Preserving Porosity of Mesoporous Metal-Organic Frameworks through the Introduction of Polymer Guests.

作者信息

Peng Li, Yang Shuliang, Jawahery Sudi, Moosavi Seyed Mohamad, Huckaba Aron J, Asgari Mehrdad, Oveisi Emad, Nazeeruddin Mohammad Khaja, Smit Berend, Queen Wendy L

机构信息

Institute of Chemical Sciences and Engineering , École Polytechnique Fédérale de Lausanne (EPFL) , Rue de l'Industrie 17 , CH-1951 Sion , Switzerland.

Department of Chemical and Biomolecular Engineering , University of California, Berkeley , Berkeley , California 94720 , United States.

出版信息

J Am Chem Soc. 2019 Aug 7;141(31):12397-12405. doi: 10.1021/jacs.9b05967. Epub 2019 Jul 18.

Abstract

High internal surface areas, an asset that is highly sought after in material design, has brought metal-organic frameworks (MOFs) to the forefront of materials research. In fact, a major focus in the field is on creating innovative ways to maximize MOF surface areas. Despite this, large-pore MOFs, particularly those with mesopores, continue to face problems with pore collapse upon activation. Herein, we demonstrate an easy method to inhibit this problem via the introduction of small quantities of polymer. For several mesoporous, isostructural MOFs, known as M(NDISA) (where M = Ni, Co, Mg, or Zn), the accessible surface areas are increased dramatically, from 5 to 50 times, as the polymer effectively pins the MOFs open. Postpolymerization, the high surface areas and crystallinity are now readily maintained after heating the materials to 150 °C under vacuum. These activation conditions, which could not previously be attained due to pore collapse, also provide accessibility to high densities of open metal coordination sites. Molecular simulations are used to provide insight into the origin of instability of the M(NDISA) series and to propose a potential mechanism for how the polymers immobilize the linkers, improving framework stability. Last, we demonstrate that the resulting MOF-polymer composites, referred to as M(NDISA)-PDA, offer a perfect platform for the appendage/immobilization of small nanocrystals inside rendering high-performance catalysts. After decorating one of the composites with Pd (average size: 2 nm) nanocrystals, the material shows outstanding catalytic activity for Suzuki-Miyaura cross-coupling reactions.

摘要

高内表面积是材料设计中备受追捧的特性,这使得金属有机框架材料(MOF)成为材料研究的前沿领域。事实上,该领域的一个主要关注点是创造创新方法来最大化MOF的表面积。尽管如此,大孔MOF,尤其是那些具有介孔的MOF,在活化时仍面临孔坍塌的问题。在此,我们展示了一种通过引入少量聚合物来抑制该问题的简便方法。对于几种介孔同构MOF,即M(NDISA)(其中M = Ni、Co、Mg或Zn),由于聚合物有效地使MOF保持开放状态,其可及表面积显著增加,从5倍到50倍不等。聚合后,在真空下将材料加热到150°C后,高表面积和结晶度现在很容易保持。这些以前因孔坍塌而无法达到的活化条件,还提供了高密度开放金属配位位点的可及性。分子模拟用于深入了解M(NDISA)系列不稳定性的起源,并提出聚合物固定连接体从而提高框架稳定性的潜在机制。最后,我们证明所得的MOF - 聚合物复合材料,即M(NDISA)-PDA,为在内部附着/固定小纳米晶体提供了一个完美平台,从而制成高性能催化剂。在用Pd(平均尺寸:2 nm)纳米晶体修饰其中一种复合材料后,该材料对铃木 - 宫浦交叉偶联反应表现出出色的催化活性。

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