4.8 Article

Metal-Support Synergistic Catalysis in Pt/MoO3-x Nanorods toward Ammonia Borane Hydrolysis with Efficient Hydrogen Generation

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 4, Pages 5275-5286

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c20736

Keywords

ammonia borane; hydrolytic dehydrogenation; interface site; kinetic study; reaction mechanism

Funding

  1. National Natural Science Foundation of China [22172006, 21871021, 21521005, 22102006]
  2. National Key R&D Program of China [2021YFC2103501]
  3. Beijing Natural Science Foundation [2212012]
  4. Fundamental Research Funds for the Central Universities [XK1802-6, XK1803-05]

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In this work, Pt atomic clusters supported on MoO3-x nanorods were synthesized and tested as catalysts for the hydrolytic dehydrogenation of ammonia borane (AB). The optimized catalyst, Pt/MoO3-x-500, exhibited excellent catalytic performance with a high turnover frequency and remarkable stability. The study provided a fundamental understanding of the metal-support synergistic catalysis and its importance for hydrogen storage and energy catalysis.
Ammonia borane (NH3BH3, AB) serves as a promising material for chemical storage of hydrogen owing to its high hydrogen density and superior stability, in which the development of highly efficient heterogeneous catalysts toward AB hydrolysis plays a crucial role. Herein, we report Pt atomic clusters supported on MoO3-x nanorods using a two-step process: MoO3-x nanorods were synthesized at various calcination temperatures, followed by a further deposition-precipitation approach to obtain Pt/MoO3-x catalysts (denoted as Pt/MoO3-x-T, T = 300, 400, 500, and 600 degrees C). The optimized Pt/MoO3-x-500 catalyst exhibits a prominent catalytic performance toward hydrolytic dehydrogenation of AB for H-2 generation, with a turnover frequency value of 2268.6 min(-1), which stands at the top level among the reported catalysts. Moreover, the catalyst shows a remarkable stability with 90% activity remaining after five cycles. A combination investigation including HR-TEM, ac-HAADF-STEM, XPS, in situ CO-IR, XANES, and Bader charge analysis verifies the formation of Pt2+-O-v-Mo5+ (Ov represents oxygen vacancy), whose concentration is dependent on the strength of the metal-support interaction. Studies on the structure-property correlation based on an isotopic kinetic experiment, in situ FT-IR, and DFT calculations further reveal that the Mo5+-O-v sites accelerate the dissociation of H2O molecules (rate-determining step), while the adjacent Pt2+ species facilitates the cleavage of the B-H bond in the AB molecule to produce H-2. This work provides a fundamental and systematic understanding on the metal-support synergistic catalysis toward robust H-2 production, which is constructive for hydrogen storage and energy catalysis.

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