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June 10, 2017ACS Nano298 citations

Iridium-Based Multimetallic Nanoframe@Nanoframe Structure: An Efficient and Robust Electrocatalyst toward Oxygen Evolution Reaction

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JPJong‐Sik ParkYJYoung JinHBHionsuck Baik

Key Points

  • To synthesize a robust iridium-based multimetallic double-layered nanoframe structure for efficient and durable electrocatalytic oxygen evolution in acidic media.
  • Synthesized core-shell alloy@alloy nanocrystals in a single step using the differential reaction kinetics of dual Ir, Ni, and Cu precursors.
  • Converted the precursor crystals into multimetallic IrNiCu double-layered nanoframes with rhombic dodecahedral and octahedral morphologies via selective chemical etching.
  • Evaluated electrocatalytic activity and operational durability for the oxygen evolution reaction in acidic media in comparison to commercial Ir/C catalysts.
  • IrNiCu double-layered nanoframes exhibited superior electrocatalytic oxygen evolution activity in acidic media relative to commercial Ir/C catalysts.
  • Catalysts displayed high durability during extended operation, supported by the frame architecture preventing particle agglomeration and the in situ formation of a stable rutile IrO2 phase.

Abstract

Nanoframe electrocatalysts have attracted great interest due to their inherently high active surface area per a given mass. Although recent progress has enabled the preparation of single nanoframe structures with a variety of morphologies, more complex nanoframe structures such as a double-layered nanoframe have not yet been realized. Herein, we report a rational synthetic strategy for a structurally robust Ir-based multimetallic double-layered nanoframe (DNF) structure, nanoframe@nanoframe. By leveraging the differing kinetics of dual Ir precursors and dual transition metal (Ni and Cu) precursors, a core-shell-type alloy@alloy structure could be generated in a simple one-step synthesis, which was subsequently transformed into a multimetallic IrNiCu DNF with a rhombic dodecahedral morphology via selective etching. The use of single Ir precursor yielded single nanoframe structures, highlighting the importance of employing dual Ir precursors. In addition, the structure of Ir-based nanocrystals could be further controlled to DNF with octahedral morphology and CuNi@Ir core-shell structures via a simple tuning of experimental factors. The IrNiCu DNF exhibited high electrocatalytic activity for oxygen evolution reaction (OER) in acidic media, which is better than Ir/C catalyst. Furthermore, IrNiCu DNF demonstrated excellent durability for OER, which could be attributed to the frame structure that prevents the growth and agglomeration of particles as well as in situ formation of robust rutile IrO2 phase during prolonged operation.

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Cite This Study

Park et al. (2017) studied this question.

synapsesocial.com/papers/69d7c6e53b601d7be3ae2dd5https://doi.org/10.1021/acsnano.7b00233
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