Hollow Carbon Cages Derived from Polyoxometalate‐Encapsuled Metal‐Organic Frameworks for Energy‐Saving Hydrogen Production

Author:

Cao Huijie1,Wei Tianran2,Liu Qian3,Zhang Shusheng4,Qin Yongji15,Wang Hao6,Luo Jun15,Liu Xijun2ORCID

Affiliation:

1. Institute for New Energy Materials and Low-Carbon Technologies Tianjin Key Lab for Photoelectric Materials and Devices School of Materials Science and Engineering Tianjin University of Technology Tianjin 300384 P. R. China

2. State Key Laboratory of Featured Metal Materials and Life-cycle Safety for Composite Structures School of Resource Environments and Materials Guangxi University Nanning 530004 P. R. China

3. Institute for Advanced Study Chengdu University Chengdu 610106 Sichuan P. R. China

4. College of Chemistry Zhengzhou University Zhengzhou 450000 P. R. China

5. ShenSi Lab Shenzhen Institute for Advanced Study University of Electronic Science and Technology of China Shenzhen 518110 P. R. China

6. China National Coal Group Corporation Beijing 100120 P. R. China

Abstract

AbstractThe electrocatalytic conversion of water‐to‐hydrogen powered by renewable energy is one of the promising strategies to unravel the energy and environment crises. However, a such process usually costs large energy consumption owing to the low efficiency of anodic oxygen evolution reaction (OER), which is another vital half reaction of the overall water splitting (OWS) system. Herein, we designed and fabricated hollow nitrogen‐doped carbon nanocages loaded with Ni3N and Co nanoparticles derived from polyoxometalate‐encapsuled metal‐organic frameworks. The catalyst exhibited appealing dual functions for both OER and hydrogen evolution reaction (HER), outperforming the Ni‐free and solid samples. Notably, the designed catalyst also showed much enhanced electrochemical performance for glycerol/glucose oxidation reaction when compared with OER. The home‐made two‐electrode electrolyzer, coupled HER with polyalcohol or glucose oxidation reaction, only needs cell voltages of 1.125 and 1.557 V to reach 10 mA cm−2, respectively, which are much smaller than that in 1 M KOH (2.087 V), demonstrating a large amount of energy saving for hydrogen production.

Funder

National Natural Science Foundation of China

Science Fund for Distinguished Young Scholars of Tianjin

Publisher

Wiley

Subject

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

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