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May 2, 2022Journal of the American Chemical Society261 citationsOpen Access

Realizing Two-Electron Transfer in Ni(OH)2 Nanosheets for Energy Storage

JKJianxin KangYXYufeng XueJYJie Yang

Key Points

  • To investigate whether atomically thin monolayer nickel hydroxide nanosheets can achieve two-electron redox transfer to overcome traditional one-electron storage capacity limitations.
  • Conducted first-principles calculations to model the thermodynamics and kinetics of Ni2+ to Ni3+ and Ni3+ to Ni4+ oxidation pathways in monolayer versus multilayer structures.
  • Synthesized monolayer Ni(OH)2 nanosheets and conducted electrochemical testing alongside in situ experiments to track redox reactions and nickel oxidation states during charging.
  • Calculations indicated that exposed surface hydrogen atoms in monolayers eliminate interlayer bonding and Jahn-Teller distortion barriers, facilitating Ni3+ to Ni4+ oxidation.
  • Synthesized monolayer Ni(OH)2 achieved an experimental redox capacity of ~576 mA h/g, nearly double the theoretical capacity of conventional one-electron transfer systems.
  • In situ testing confirmed full two-electron transfer with widespread conversion of Ni ions to Ni4+ in monolayers, compared to only partial oxidation in bulk Ni(OH)2.

Abstract

The theoretical capacity of a given electrode material is ultimately determined by the number of electrons transferred in each redox center. The design of multi-electron transfer processes could break through the limitation of one-electron transfer and multiply the total capacity but is difficult to achieve because multiple electron transfer processes are generally thermodynamically and kinetically more complex. Here, we report the discovery of two-electron transfer in monolayer Ni(OH)2 nanosheets, which contrasts with the traditional one-electron transfer found in multilayer materials. First-principles calculations predict that the first oxidation process Ni2+ → Ni3+ occurs easily, whereas the second electron transfer in Ni3+ → Ni4+ is strongly hindered in multilayer materials by both the interlayer hydrogen bonds and the domain H structure induced by the Jahn-Teller distortion of the Ni3+ (t2g6eg1)-centered octahedra. In contrast, the second electron transfer can easily occur in monolayers because all H atoms are fully exposed. Experimentally, the as-prepared monolayer is found to deliver an exceptional redox capacity of ∼576 mA h/g, nearly 2 times the theoretical capacity of one-electron processes. In situ experiments demonstrate that monolayer Ni(OH)2 can transfer two electrons and most Ni ions transform into Ni4+ during the charging process, whereas bulk Ni(OH)2 can only be transformed partially. Our work reveals a new redox reaction mechanism in atomically thin Ni(OH)2 nanosheets and suggests a promising path toward tuning the electron transfer numbers to multiply the capacity of the relevant energy storage materials.

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Cite This Study

Kang et al. (2022) studied this question.

synapsesocial.com/papers/69d89e9733ca018b39ae3c89https://doi.org/10.1021/jacs.1c13523
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