Javascript must be enabled to continue!
Synthesis of Hollow Pt-Ni Nanoboxes for Highly Efficient Methanol Oxidation
View through CrossRef
AbstractIn direct methanol fuel cell technology, highly stable electrochemical catalysts are critically important for their practical utilization at the commercial scale. In this study, sub ~10 nm hollow Pt-Ni (1:1 at. ratio) nanoboxes supported on functionalized Vulcan carbon (Pt-Ni/C-R2) were synthesized through a facile method for the efficient electrooxidation of methanol. Two reaction procedures, namely, a simultaneous reduction and a modified sequential reduction method using a reverse microemulsion (RME) method, were adopted to synthesize solid Pt-Ni NPs and hollow nanoboxes, respectively. To correlate the alloy composition and surface structure with the enhanced catalytic activity, the results were compared with the nanocatalyst synthesized using a conventional NaBH4reduction method. The calculated electroactive surface area for the Pt-Ni/C-R2 nanoboxes was 190.8 m2.g−1, which is significantly higher compared to that of the Pt-Ni nanocatalyst (96.4 m2.g−1) synthesized by a conventional reduction method. Hollow nanoboxes showed 34% and 44% increases in mass activity and rate of methanol oxidation reaction, respectively, compared to solid NPs. These results support the nanoreactor confinement effect of the hollow nanoboxes. The experimental results were supported by Density Functional Theory (DFT) studies, which revealed that the lowest CO poisoning of the Pt1Ni1catalyst among all Ptm-Ninmixing ratios may account for the enhanced methanol oxidation. The synthesized hollow Pt-Ni/C (R2) nanoboxes may prove to be a valuable and highly efficient catalysts for the electrochemical oxidation of methanol due to their low cost, numerous catalytically active sites, low carbon monoxide poisoning, large electroactive surface area and long-term stability.
Springer Science and Business Media LLC
Title: Synthesis of Hollow Pt-Ni Nanoboxes for Highly Efficient Methanol Oxidation
Description:
AbstractIn direct methanol fuel cell technology, highly stable electrochemical catalysts are critically important for their practical utilization at the commercial scale.
In this study, sub ~10 nm hollow Pt-Ni (1:1 at.
ratio) nanoboxes supported on functionalized Vulcan carbon (Pt-Ni/C-R2) were synthesized through a facile method for the efficient electrooxidation of methanol.
Two reaction procedures, namely, a simultaneous reduction and a modified sequential reduction method using a reverse microemulsion (RME) method, were adopted to synthesize solid Pt-Ni NPs and hollow nanoboxes, respectively.
To correlate the alloy composition and surface structure with the enhanced catalytic activity, the results were compared with the nanocatalyst synthesized using a conventional NaBH4reduction method.
The calculated electroactive surface area for the Pt-Ni/C-R2 nanoboxes was 190.
8 m2.
g−1, which is significantly higher compared to that of the Pt-Ni nanocatalyst (96.
4 m2.
g−1) synthesized by a conventional reduction method.
Hollow nanoboxes showed 34% and 44% increases in mass activity and rate of methanol oxidation reaction, respectively, compared to solid NPs.
These results support the nanoreactor confinement effect of the hollow nanoboxes.
The experimental results were supported by Density Functional Theory (DFT) studies, which revealed that the lowest CO poisoning of the Pt1Ni1catalyst among all Ptm-Ninmixing ratios may account for the enhanced methanol oxidation.
The synthesized hollow Pt-Ni/C (R2) nanoboxes may prove to be a valuable and highly efficient catalysts for the electrochemical oxidation of methanol due to their low cost, numerous catalytically active sites, low carbon monoxide poisoning, large electroactive surface area and long-term stability.
Related Results
Multi-Walled Carbon Nanotubes Composite Catalysts with Pd Nanoparticles for Methanol Oxidation
Multi-Walled Carbon Nanotubes Composite Catalysts with Pd Nanoparticles for Methanol Oxidation
Multi-walled carbon nanotubes (MWNTs)-supported palladium (Pd) nanoparticles (NPs) catalyst (Pd/MWNTs) for methanol oxidation was prepared by a novel one-pot bottom-up method, i.e....
Oxidation Kinetics Analysis of Crude Oils with Different Viscosities
Oxidation Kinetics Analysis of Crude Oils with Different Viscosities
In order to compare the oxidation kinetics parameters of crude oils with different properties in the process of crude oil oxidation, six different crude oil samples were selected t...
Transport in polymer electrolyte membranes using time-resolved FTIR-ATR spectroscopy
Transport in polymer electrolyte membranes using time-resolved FTIR-ATR spectroscopy
Polymer electrolyte membranes (PEMs) hold potential to improve performance in fuel cells, electrochemical devices that can generate electricity efficiently. In particular, direct m...
Resource recovery through simultaneous denitrification and fermentation in engineered anaerobic systems
Resource recovery through simultaneous denitrification and fermentation in engineered anaerobic systems
[EMBARGOED UNTIL 08/01/2025] Anaerobic digestion (AD) is widely used to process organic waste and is a promising platform for producing bioenergy and biomaterials. However, the fin...
The Hollow Month At Athens
The Hollow Month At Athens
Abstract(1) Metageitnion in 407/6 was made a hollow month while still retaining δευτερα φνoντo by the omission of a day after δεℵάτη υστερα, undoubtedly ενάτη φνoντo (pp. 230-2)....
Methanol expression regulator 1 (Mxr1p) promotes xylulose 5-phosphate recycle via increaseing transketolase activity in Pichia pastoris
Methanol expression regulator 1 (Mxr1p) promotes xylulose 5-phosphate recycle via increaseing transketolase activity in Pichia pastoris
Abstract
Background Methanol expression regulator 1 (Mxr1p) is a key transcription factor that plays a vital role in the methanol utilization pathway in Pichia pastoris ( P...
Metal oxides carbon xerogel nanocomposite for methanol oxidation fuel cell
Metal oxides carbon xerogel nanocomposite for methanol oxidation fuel cell
Abstract
The primary requirement for electrode materials in direct methanol fuel cells (DMFC) is efficient electrocatalyst that exhibit high tolerance to methanol oxidati...
A techno-economic-environmental analysis of the methanol production from biogas and power-to-X
A techno-economic-environmental analysis of the methanol production from biogas and power-to-X
Methanol is a key ingredient for the chemical industry and for the energy sector. Towards a transition into carbon-neutral future, it would be of great interest to reduce the fossi...

