4.8 Article

Pdδ+-Mediated Surface Engineering of AgMnO4 Nanorods as Advanced Bifunctional Electrocatalysts for Highly Efficient Water Electrolysis

Journal

ACS CATALYSIS
Volume 11, Issue 6, Pages 3687-3703

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.0c05638

Keywords

AgMnO4/PdOx/Pd; bifunctional electrocatalyst; oxygen evolution reaction; hydrogen evolution reaction; water splitting; surface engineering

Funding

  1. IIESTS
  2. UGC [201516-RGNF-2015-17-SC-WES-690]

Ask authors/readers for more resources

This study successfully improved the catalytic performance of electrocatalysts by synthesizing silver permanganate nanoparticles doped with palladium, achieving extremely low overpotentials and small Tafel slopes, demonstrating excellent bifunctional activity. The optimal catalytic effect was observed at a temperature of 260 degrees Celsius.
As an extremely attractive technology for the efficient generation of O-2 and H-2, water electrolysis involving oxygen and hydrogen evolution reactions (OER, HER) mainly depends on efficient and affordable electrocatalysts. In this work, we initially synthesize silver permanganate, AgMnO4 (AMO), nanoparticles (NPs) with Pd-0 through NaBH4 reduction. Subsequently, their surface is further modified using PdOx (x = 1, 1.5, 2) via annealing the AMO/Pd nanocomposite (NComp-1). For the optimization of catalytic properties, the chemical state of oxidic Pd delta+ is modulated by changing the annealing temperature from 160 to 360 degrees C. The electrocatalytic activity of NComp-1 is observed to improve gradually on increasing the temperature, and it reaches a maximum at 260 degrees C. This increase in temperature leads to an increase in the chemical state of Pd delta+ species produced at the AMO-Pd interface. Moreover, a temperature of 260 degrees C provides mixed-valence Pd (0, 2+, 3+), which strongly contributes to excellent OER/HER activities of AMO/PdOx/Pd-260 NComp (NComp-3). However, a temperature of 360 degrees C converts all Pd to Pd4+, which in turn decreases its activity, implying the intrinsic benefit of mixed-valence Pd(delta+ )toward OER/HER. The optimized NComp-3 features enhanced bifunctional properties, exhibiting extremely low overpotentials (eta(10)) (160 mV for OER, 58 mV for HER at 10 mA cm(-2)) with small Tafel slopes (64.9 mV dec(-1) for OER, 37.8 mV dec(-1) for HER). Inspired by the superior bifunctionality, a symmetric alkaline electrolyzer is assembled with NComp-3, which needs only 1.50 V to reach a water-splitting current of 10 mA cm(-2) and exhibits remarkable long-term stability. The enhanced electrocatalytic performance may be due to the synergetic effect among AMO, PdOx, and Pd, which distinctively improves the adsorption of reaction intermediates, surface area, electrical conductivity, charge-mass transport, and also stability. Therefore, our work highlights the importance of surface engineering through regulating the surface electronic status and also offers a feasible strategy for synthesizing efficient bifunctional electrocatalysts for renewable energy applications.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.8
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available