4.8 Article

Preparation of MOF Film/Aerogel Composite Catalysts via Substrate-Seeding Secondary-Growth for the Oxygen Evolution Reaction and CO2 Cycloaddition

Journal

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION
Volume 60, Issue 2, Pages 701-705

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/anie.202012354

Keywords

aerogels; CO2 cycloaddition; metal– organic frameworks (MOFs); OER; thin films

Funding

  1. National Natural Science Foundation of China [22072163, 21761132010, 91645114, 21805029]
  2. Youth Innovation Promotion Association, CAS
  3. Natural Science Foundation of Liaoning Province of China [2020-YQ-02]
  4. Fundamental Research Funds for the Central Universities [N180504007, N2005007]
  5. Open Project of State Key Laboratory of Supramolecular Structure and Materials [202008]

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A novel substrate-seeding secondary-growth strategy was developed to prepare composite films of uniform MOFs on aerogel walls, resulting in hierarchical MOFs/aerogel composites with outstanding catalytic activity and stability in both liquid-phase CO2 cycloaddition and electrochemical oxygen evolution reaction processes.
Substrate-supported metal-organic frameworks (MOFs) films are desired to realize their potential in practical applications. Herein, a novel substrate-seeding secondary-growth strategy is developed to prepare composites of uniform MOFs films on aerogel walls. Briefly, the organic ligand is pre-seeded onto the aerogel walls, and then a small amount of metal-ion solution is sprayed onto the prepared aerogel. The sprayed solution diffuses along the aerogel walls to form a continuous thin layer, which confines the nucleation reaction, promoting the formation of uniform MOFs films on the aerogel walls. The whole process is simple in operation, highly efficient, and eco-friendly. The resulting hierarchical MOFs/aerogel composites have abundant accessible active sites and enable excellent mass transfer, which endows the composite with outstanding catalytic activity and stability in both liquid-phase CO2 cycloaddition and electrochemical oxygen evolution reaction (OER) process.

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