4.7 Article

2D CoOOH Sheet-Encapsulated Ni2P into Tubular Arrays Realizing 1000 mA cm-2-Level-Current-Density Hydrogen Evolution Over 100 h in Neutral Water

Journal

NANO-MICRO LETTERS
Volume 12, Issue 1, Pages -

Publisher

SHANGHAI JIAO TONG UNIV PRESS
DOI: 10.1007/s40820-020-00476-4

Keywords

Large-scale hydrogen production; Mass transport; 2D adaptive material; Interfacial charge modulation; Multiscale coordinated regulation

Funding

  1. National Natural Science Foundation of China [21761004, 21805102, 21701035, 21825103]
  2. Hubei Provincial Natural Science Foundation of China [2019CFA002]
  3. specific research project of Guangxi for research bases and talents [AD18126005]
  4. Fundamental Research Funds for the Central University [2019kfyXMBZ018]
  5. training program for thousands of backbone young teachers in Guangxi universities

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Water electrolysis at high current density (1000 mA cm(-2)level) with excellent durability especially in neutral electrolyte is the pivotal issue for green hydrogen from experiment to industrialization. In addition to the high intrinsic activity determined by the electronic structure, electrocatalysts are also required to be capable of fast mass transfer (electrolyte recharge and bubble overflow) and high mechanical stability. Herein, the 2D CoOOH sheet-encapsulated Ni2P into tubular arrays electrocatalytic system was proposed and realized 1000 mA cm(-2)-level-current-density hydrogen evolution over 100 h in neutral water. In designed catalysts, 2D stack structure as an adaptive material can buffer the shock of electrolyte convection, hydrogen bubble rupture, and evolution through the release of stress, which insure the long cycle stability. Meanwhile, the rich porosity between stacked units contributed the good infiltration of electrolyte and slippage of hydrogen bubbles, guaranteeing electrolyte fast recharge and bubble evolution at the high-current catalysis. Beyond that, the electron structure modulation induced by interfacial charge transfer is also beneficial to enhance the intrinsic activity. Profoundly, the multiscale coordinated regulation will provide a guide to design high-efficiency industrial electrocatalysts.

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