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Cho, Jaephil
Nano Energy Storage Material Lab.
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Coupling a Low Loading of IrP 2 , PtP 2 , or Pd 3 P with Heteroatom-Doped Nanocarbon for Overall Water-Splitting Cells and Zinc-Air Batteries

Author(s)
Qin, QingJang, HaeseongChen, LuLuLi, PingWei, TaoLiu, XienCho, Jaephil
Issued Date
2019-05
DOI
10.1021/acsami.8b21155
URI
https://scholarworks.unist.ac.kr/handle/201301/26833
Fulltext
https://pubs.acs.org/doi/10.1021/acsami.8b21155
Citation
ACS APPLIED MATERIALS & INTERFACES, v.11, no.18, pp.16461 - 16473
Abstract
Noble metal-based catalysts are currently the most advanced electrocatalysts for many applications, such as for energy conversion and for chemical industry. Because of the high cost and scarcity of noble metals, reducing the usage is a practical way to achieve scalable applications. Herein, for the first time, three novel electrocatalysts composed of noble metal phosphide (IrP 2 , Pd 3 P, or PtP 2 ) nanoparticles with N,P-codoped nanocarbon were synthesized by the pyrolysis of mixtures of IrCl 4 , PdCl 2 , or PtCl 4 with phytic acid under an ammonia atmosphere. With an ultralow loading of Pd (1.5 μg), Pt (1.4 μg), or Ir (1.6 μg) on the electrode, the Pd 3 P/NPC, PtP 2 /NPC, and IrP 2 /NPC catalysts, respectively, exhibited excellent trifunctional catalytic activities for the oxygen reduction reaction, hydrogen evolution reaction, and oxygen evolution reaction. Notably, the IrP 2 /NPC-, Pd 3 P/NPC-, and PtP 2 /NPC-based water-splitting cells required only 1.62, 1.65, and 1.68 V, respectively, to deliver the current density of 10 mA cm -2 . Furthermore, the IrP 2 /NPC-, Pd 3 P/NPC-, and PtP 2 /NPC-based zinc-air batteries exhibited higher specific capacities than that of Pt/C. IrP 2 /NPC exhibited a comparable performance to that of Pt/C-IrO 2 for use in rechargeable zinc-air batteries.
Publisher
American Chemical Society
ISSN
1944-8244
Keyword (Author)
multifunctional electrocatalystsnanocarbonnoble metal phosphideswater-splitting cellszinc-air batteries
Keyword
Precious metalsSynthesis (chemical)ZincHydrogen evolution reactionsMetal phosphidesMetal-based catalystsOxygen evolution reactionOxygen reduction reactionRechargeable zinc-air batteriesSpecific capacitiesWater splittingZinc air batteriesElectrolysisElectrolytic reductionEnergy conversionIridium compoundsMetal nanoparticlesAmmoniaCatalyst activityChemical industryNanocarbonChlorine compoundsElectrocatalystsOxygenPalladium compoundsPhosphorus compoundsPlatinum compounds

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