MOF‐Templated Hierarchical Porous Hollow Core‐Shell Framework Cobalt Oxide for Enhancing Hydrogen Generation from Borohydride‐Based Hydrolysis

Author:

Tran Dinh Trinh1,Van Tap Huu23,Tsai Yu‐chih4,Lin Kun‐Yi Andrew45ORCID,Duong Tuan Dinh6ORCID

Affiliation:

1. VNU Key Lab. of Advanced Materials for Green Growth University of Science Vietnam National University 120000 Hanoi Viet Nam

2. Faculty of Natural Resources and Environment TNU – University of Sciences Thai Nguyen City 250000 Viet Nam

3. Center for Advanced Technology Development Thai Nguyen University Tan Thinh ward Thai Nguyen City 250000 Viet Nam

4. Department of Environmental Engineering & Innovation and Development Center of Sustainable Agriculture National Chung Hsing University 402 Taichung Taiwan

5. Institute of Analytical and Environmental Sciences National Tsing Hua University 300 Hsinchu Taiwan

6. International School Thai Nguyen University Thai Nguyen 250000 Viet Nam

Abstract

AbstractDesigning and fabricating a competent cobalt‐based catalyst for sodium borohydride (NaBH4) hydrolysis is of great importance. The present work reports the synthesis of hierarchical porous hollow core‐shell framework cobalt oxide (HCSCO) via etching and calcination processes, which is then employed for catalyzing NaBH4 hydrolysis. The surface morphology and the hollow core‐shell framework of HCSCO were revealed by scanning electron microscope (SEM) and transmission electron microscope (TEM) analyses; the crystalline structure and the formation of Co3O4 in HCSCO were determined by X‐ray diffraction (XRD) and Raman spectroscopy; the surface area and porosity of HCSCO were verified by N2 adsorption‐desorption isotherm; and X‐ray photoelectron spectroscopy (XPS) was utilized to examine the chemical states of HCSCO. The as‐prepared HCSCO showed prominent catalytic hydrolysis of NaBH4 to generate H2 with a H2 generation rate of 441 ml min−1 gcatalyst−1 and a low activation energy (Ea) of 34.8 kJ mol−1. This Ea value of HCSCO is substantially lower than that of other catalysts, including noble metal catalysts or composites reported in the literature. Besides, HCSCO could remain its superb activity (~100 % H2 generation efficiency) over multiple hydrolysis cycles without significant changes of morphology and microstructure. The catalytic hydrolysis mechanism for H2 generation from NaBH4 using HCSCO is also proposed. This work provides a valuable strategy for the synthesis and fabrication of state‐of‐art catalysts for H2 generation from the hydrolysis of NaBH4.

Publisher

Wiley

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Catalysis

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