Steam activation of Fe-N-C catalyst for advanced power performance of alkaline hydrazine fuel cells

来源 :能源化学 | 被引量 : 0次 | 上传用户:benxiaohai10000
下载到本地 , 更方便阅读
声明 : 本文档内容版权归属内容提供方 , 如果您对本文有版权争议 , 可与客服联系进行内容授权或下架
论文部分内容阅读
Alkaline hydrazine liquid fuel cells (AHFC) have been highlighted in terms of high power performance with non-precious metal catalysts.Although Fe-N-C is a promising non-Pt electrocatalyst for oxygen reduction reaction (ORR),the surface density of the active site is very low and the catalyst layer should be thick to acquire the necessary number of catalytic active sites.With this thick catalyst layer,it is important to have an optimum pore structure for effective reactant conveyance to active sites and an interface structure for faster charge transfer.Herein,we prepare a Fe-N-C catalyst with magnetite parti-cles and hierarchical pore structure by steam activation.The steam activation process significantly improves the power performance of the AHFC as indicated by the lower IR and activation voltage losses.Based on a systematic characterization,we found that hierarchical pore structures improve the catalyst utilization efficiency of the AHFCs,and magnetite nanoparticles act as surface modifiers to reduce the interfacial resistance between the electrode and the ion-exchange membrane.
其他文献
Balancing charge generation and low energy loss (Eloss),especially in the wide spectral absorption region is critical to obtain high-performance organic photovoltaics (OPVs).Therefore,Y11-M and Y11-EB are designed and synthesized through modifying alkyl c
Studies on the formation and evolution of the solid electrolyte interface (SEI) film under different ambient temperatures are important to understand the failure behavior of lithium-ion batteries (LIBs).Herein,in-situ electrochemical impedance spectroscop
Plasmonic nanomaterials are sources of light,heat and electrons at nanometer scale.Given the outstand-ing performance in harvesting and converting solar energy under visible light irradiation,hybrid nano-materials with plasmonic activity have recently eme
Mixed-halide lead perovskites (MHLPs) are semiconductor materials with bandgaps that are tunable across the visible spectrum and have seen promising applications in photovoltaics and optoelectronics.However,their segregation into phases with enriched hali
Hierarchically porous architecture of iron-nitrogen-carbon (Fe-N-C) for oxygen reduction reaction (ORR)is highly desired towards efficient mass transfer in the fuel cell device manner.Herein,we reported a bin-ary ligand strategy to prepare zeolitic imidaz
The rapid development of micro-electronics raises the demand of their power sources to be simplified,miniaturized and highly integratable with other electronics on a chip.In-plane Micro-sized energy stor-age devices (MESDs),which are composed of interdigi
Chemical doping is verified to be a promising strategy to regulate local electron distribution and further promote the poor intrinsic catalytic activity of graphdiyne.However,the current doping approach still faces problems such as precise doping for crea
Electrocatalysts play a crucial role in the development of renewable energy conversion and storage nan-otechnologies.The unique advantages of heteroatom-doped porous carbon-supported single-atom electro-catalysts (SAC-HDPCs) are clear.These SAC-HDPCs exhi
Catalytic CO2 conversion has witnessed a dynamic growth in recent decades.Various materials have been applied to reduce CO2 into fuels and value-added chemicals.Normally,the powder-based catalysts can-not be directly utilized for CO2 conversion.Much atten
g-C3N4 emerges as a star 2D photocatalyst due to its unique layered structure,suitable band structure and low cost.However,its photocatalytic application is limited by the fast charge recombination and low photoabsorption.Rationally designing g-C3N4-based