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Interface engineering to optimize the catalytic activity of Fe,Co,and Ti sites in FeCoP/MXene toward efficient overall water splitting
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作者 He-He Wei Xin-Xin Zhang +3 位作者 Si-Wei Sun Shi-Li Gai Hai-Tao Yu Ying Xie 《Rare Metals》 2025年第10期7385-7403,共19页
Transition metal phosphides(TMPs),with tunable electronic structures and diverse compositions,are promising candidates for electrocatalytic water splitting.However,their unsatisfactory electrical conductivity and tend... Transition metal phosphides(TMPs),with tunable electronic structures and diverse compositions,are promising candidates for electrocatalytic water splitting.However,their unsatisfactory electrical conductivity and tendency to aggregate during reactions result in structural instability,ultimately hindering further improvement of their electrocatalytic performance.To address these issues,a bamboo-leaf-like FeCoP/MXene heterojunction was synthesized by hydrothermal and thermal treatments,utilizing highly conductive MXene as the substrate.Density functional theory(DFT)calculations and experimental characterization reveal that strong Ti-O-Co/Fe covalent bond are formed between MXene and FeCoP through hybridization of O 2p and Co/Fe 3d orbitals,which enhance the structural stability of the interface and facilitate the effective anchoring of FeCoP on the MXene surface.Consequently,the structural stability and electrical conductivity of the catalyst are improved simultaneously.Additionally,interfacial charge redistribution optimizes the Gibbs free energy of hydrogen adsorption at the Co,Fe,and Ti sites while promoting the adsorption and activation of water molecules.These factors interact synergistically,leading to enhanced bi-functional electrocatalytic performance for both the hydrogen evolution reaction(HER)and oxygen evolution reaction(OER).In a FeCoP/MXene(+‖-)two-electrode system,the catalyst achieves a current density of 10 mA cm^(-2)at a potential of 1.5 V,which is superior to the RuO_(2)(+)‖Pt/C(-)system.The assembled water splitting device exhibits long-term stability for up to 100 h at a current density of 100 mA cm^(-2).Furthermore,an anion exchange membrane water electrolyzer(AEMWE)equipped with FeCoP/MXene as both anode and cathode achieves an industrial-grade current density of 500 mA cm^(-2)at 1.83 V.These results highlight the critical role of interfacial engineering in enhancing the electrocatalytic performance of TMPs for water splitting and provide valuable insights for the design of novel bifunctional TMP catalysts. 展开更多
关键词 ELECTROCATALYST MXene fecop HETEROJUNCTION Water splitting
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FeCoP/NC纳米多面体对水体中Pb(Ⅱ)的高灵敏检测
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作者 吴勃 杨猛 孙宇峰 《功能材料》 CAS CSCD 北大核心 2023年第9期9226-9236,共11页
将CoP优异的催化作用与高吸附性、良好导电性的氮掺杂碳基相结合,采用多面体状FeCoP/NC纳米材料修饰玻碳电极构建了电化学传感界面。利用方波阳极溶出伏安法检测Pb(Ⅱ)的灵敏度为66.58μA/(μmol/L),检出限为0.025μmol/L,此方法对Cd(Ⅱ... 将CoP优异的催化作用与高吸附性、良好导电性的氮掺杂碳基相结合,采用多面体状FeCoP/NC纳米材料修饰玻碳电极构建了电化学传感界面。利用方波阳极溶出伏安法检测Pb(Ⅱ)的灵敏度为66.58μA/(μmol/L),检出限为0.025μmol/L,此方法对Cd(Ⅱ)、Cu(Ⅱ)、Hg(Ⅱ)共存时对Pb(Ⅱ)的测定具有较好的抗干扰性,通过反复试验,证实了其良好的稳定性和重复性。该工作为构建面向低浓度污染物的敏感界面提供了指导,对电化学检测水环境中重金属污染物的实际工程应用具有重要意义。 展开更多
关键词 fecop/NC 高灵敏度 Pb(Ⅱ) 环境
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