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Electrospun Nanofibrous Transition Metal-based Bifunctional Electrocatalysts Toward Overall Water Splitting
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作者 YIN Yongting LU Xiaofeng 《高等学校化学学报》 北大核心 2026年第1期87-107,共21页
Electrochemical water splitting represents a sustainable technology for hydrogen(H_(2))production.However,its large-scale implementation is hindered by the high overpotentials required for both the cathodic hydrogen e... Electrochemical water splitting represents a sustainable technology for hydrogen(H_(2))production.However,its large-scale implementation is hindered by the high overpotentials required for both the cathodic hydrogen evolution reaction(HER)and the anodic oxygen evolution reaction(OER).Transition metal-based catalysts have garnered significant research interest as promising alternatives to noble-metal catalysts,owing to their low cost,tunable composition,and noble-metal-like catalytic activity.Nevertheless,systematic reviews on their application as bifunctional catalysts for overall water splitting(OWS)are still limited.This review comprehensively outlines the principal categories of bifunctional transition metal electrocatalysts derived from electrospun nanofibers(NFs),including metals,oxides,phosphides,sulfides,and carbides.Key strategies for enhancing their catalytic performance are systematically summarized,such as heterointerface engineering,heteroatom doping,metal-nonmetal-metal bridging architectures,and single-atom site design.Finally,current challenges and future research directions are discussed,aiming to provide insightful perspectives for the rational design of high-performance electrocatalysts for OWS. 展开更多
关键词 Electrospinning Nanofibers Transition metal-based catalyst Overall water splitting Performance optimization
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Ultrathin Pd based bimetallic nanowires as highly efficient ampere-level pH-universal water splitting
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作者 Yuanwei Ma Jigang Wang +4 位作者 Zhaodi Yan Qiang Liu Lanyan Li Zhongfang Li Likai Wang 《Chinese Chemical Letters》 2026年第1期350-355,共6页
Herein,we have developed a straightforward wet-chemical method to synthesize a series of Pd-based alloy nanowires(NWs),including Pd Pt NWs,Pd Au NWs,Pd Ir NWs,and Pd Ru NWs,which exhibits high mass activity and turnov... Herein,we have developed a straightforward wet-chemical method to synthesize a series of Pd-based alloy nanowires(NWs),including Pd Pt NWs,Pd Au NWs,Pd Ir NWs,and Pd Ru NWs,which exhibits high mass activity and turnover frequency(TOF) for HER,surpassing Pt/C by 4.6-fold and 1.5-fold in acidic and alkaline electrolytes,respectively.It also demonstrates high stability in alkaline electrolyte at a current density of 220 m A/cm^(2) for 280 h,highlighting its potential for practical applications under industrial current conditions.Pd Pt NWs exhibited ultrathin structures with head-to-tail kinks and inherent defects,significantly increasing the density of active sites and precisely tuning the electronic structure,which could accelerate reaction kinetics and boost water-splitting electrocatalytic performance.This study highlights the potential of Pd Pt NWs as highly efficient catalysts,offering outstanding catalytic performance and stability for practical applications. 展开更多
关键词 PdPt ALLOY NANOWIRES water splitting HER
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Co-optimization of CuBi_(2)O_(4)photocathode by heterojunction and hole-selective layer for efficient photoelectrochemical water splitting
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作者 An-Zheng Zhu Hai Shan +8 位作者 Si-Min Cai Can-Can Chang Lei Yang Chong-Hai Deng Ning-Ning Zhou Kun-Hong Hu Hai Yu Jian-Guo Lv Gang He 《Rare Metals》 2025年第2期998-1013,共16页
CuBi_(2)O_(4)is identified as a promising photocathode in photoelectrochemical(PEC)water splitting systems.However,the PEC performance of CuBi_(2)O_(4)is far from expected due to the limited separation and transport e... CuBi_(2)O_(4)is identified as a promising photocathode in photoelectrochemical(PEC)water splitting systems.However,the PEC performance of CuBi_(2)O_(4)is far from expected due to the limited separation and transport efficiency of photogenerated carriers.To address the above issues,a cost-effective ternary Cu:NiO_(X)/CuBi_(2)O_(4)/CuO composite photocathode was designed.Firstly,a thin Cu:NiO_(X)film was inserted between CuBi_(2)O_(4)and FTO conducting substrate as a hole-selective layer,which promotes the transmission of photogenerated holes to the FTO substrate effectively.Furthermore,the modification of CuO film on the CuBi_(2)O_(4)electrode not only increases the absorption of sunlight and generates more photogenerated carriers,but also constitutes a heterojunction with CuBi_(2)O_(4),creating a built-in electric field,which facilitates the separation of electrons and holes,and accelerates the electrons transfer to electrode–electrolyte interface.The fabricated Cu:NiO_(X)/CuBi_(2)O_(4)/CuO composite photocathode exhibits a surprisingly high photocurrent density of−1.51 mA·cm^(−2)at 0.4 V versus RHE,which is 2.6 times that of the pristine CuBi_(2)O_(4)photocathode.The improved PEC performance is attributed to the synergy effect of the Cu:NiO_(X)hole-selective layer and the CuBi_(2)O_(4)/CuO heterojunction.Moreover,the combination with the BiVO_(4)/CoS,an unbiased overall water splitting was achieved,which has a photocurrent of 0.193 mA·cm^(−2). 展开更多
关键词 CuBi_(2)O_(4) PHOTOCATHODE PEC water splitting Unbiased overall water splitting
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Bimetallic Single‑Atom Catalysts for Water Splitting 被引量:1
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作者 Megha A.Deshmukh Aristides Bakandritsos Radek Zbořil 《Nano-Micro Letters》 SCIE EI CAS 2025年第1期1-45,共45页
Green hydrogen from water splitting has emerged as a critical energy vector with the potential to spearhead the global transition to a fossil fuel-independent society.The field of catalysis has been revolutionized by ... Green hydrogen from water splitting has emerged as a critical energy vector with the potential to spearhead the global transition to a fossil fuel-independent society.The field of catalysis has been revolutionized by single-atom catalysts(SACs),which exhibit unique and intricate interactions between atomically dispersed metal atoms and their supports.Recently,bimetallic SACs(bimSACs)have garnered significant attention for leveraging the synergistic functions of two metal ions coordinated on appropriately designed supports.BimSACs offer an avenue for rich metal–metal and metal–support cooperativity,potentially addressing current limitations of SACs in effectively furnishing transformations which involve synchronous proton–electron exchanges,substrate activation with reversible redox cycles,simultaneous multi-electron transfer,regulation of spin states,tuning of electronic properties,and cyclic transition states with low activation energies.This review aims to encapsulate the growing advancements in bimSACs,with an emphasis on their pivotal role in hydrogen generation via water splitting.We subsequently delve into advanced experimental methodologies for the elaborate characterization of SACs,elucidate their electronic properties,and discuss their local coordination environment.Overall,we present comprehensive discussion on the deployment of bimSACs in both hydrogen evolution reaction and oxygen evolution reaction,the two half-reactions of the water electrolysis process. 展开更多
关键词 Single-atom catalysts Single-atom dimers Hydrogen evolution Oxygen evolution water splitting
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Heterogeneous Interface Engineering of CoMoP/C3N4/ N‐Doped Carbon to Boost Overall Water Splitting 被引量:1
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作者 Bo Ma Tao Bo +1 位作者 Sihao Deng Chunyong He 《Carbon Energy》 2025年第11期172-186,共15页
The design of efficient and cost‐effective bifunctional catalysts, which are capable of driving both the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER), is of paramount importance for advancing... The design of efficient and cost‐effective bifunctional catalysts, which are capable of driving both the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER), is of paramount importance for advancing overall water splitting. Here, we developed an innovative heterogeneous interface engineering strategy to boost the electrocatalytic performance of overall water splitting. This approach involves the synergistic integration of ultra‐fine CoMoP nanocrystals coupled with three‐ dimensional (3D) porous C3N4/N‐doped carbon (NC) architectures, constructing a distinctive CoMoP/C3N4/NC heterogeneous interface. The CoMoP/C3N4/NC exhibits distinguished overall water splitting performance. To drive the overall water splitting current of 10 mA cm−2, the CoMoP/C3N4/NC||CoMoP/C3N4/NC electrolysis cell only needs an ultralow cell voltage of 1.496 V. The electronic properties and localized coordination environments characterizations, and density functional theory (DFT) calculations elucidate that the improved catalytic activities of CoMoP/C3N4/NC are primarily attributed to the synergistic interfacial coupling between CoMoP/C3N4/NC heterogeneous interface. A novel multi‐site synergistic catalytic mechanism was revealed by the DFT calculations, in which the optimum H* adsorption site on CoMoP/C3N4/NC for HER is on the cobalt atoms in CoMoP with the ultralow Gibbs free energy of hydrogen bonding (ΔGH*) of 0.018 eV, while for the OER, the optimum intermediates adsorption site of the CoMoP/C3N4/NC is on the carbon atoms in C3N4/NC. Besides, the intricately engineered 3D hierarchical porous framework of the CoMoP/C3N4/NC can facilitate the ion and electron transport and improve mass transfer, which gives rise to enhanced water splitting performance. 展开更多
关键词 bifunctional catalyst bimetallic phosphide heterogeneous interface engineering hydrogen evolution reaction overall water splitting oxygen evolution reaction
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Metal nanoparticles decorated CoFe-(oxy)hydroxysulfides nanosheets fabricated by a general strategy for electrocatalytic water splitting 被引量:1
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作者 Xiaodong Yang Haochen Shen +7 位作者 Xiaoming Xiao Zhichao Li Qi Zhou Wei Yang Bin Jiang Yongli Sun Luhong Zhang Zhenhua Yan 《Journal of Energy Chemistry》 2025年第1期26-38,共13页
This study presents a novel method to fabricate metal-decorated,sulfur-doped layered double hydroxides(M/SLDH)through spontaneous redox and sulfurization processes.The developed Ag/SLDH and Pt/SLDH catalysts with abun... This study presents a novel method to fabricate metal-decorated,sulfur-doped layered double hydroxides(M/SLDH)through spontaneous redox and sulfurization processes.The developed Ag/SLDH and Pt/SLDH catalysts with abundant heterogeneous interfaces and hierarchical nanostructures demonstrated outstanding oxygen evolution reaction(OER)and hydrogen evolution reaction(HER)performance,achieving low overpotentials of 212 and 35 mV at 10 mA cm^(-2)in 1 M KOH,respectively.As both anode and cathode in water splitting,they required only 1.47 V to reach 10 mA cm^(-2)and exhibited high structural robustness,maintaining stability at 1000 mA cm^(-2)for 300 h.In-situ Raman analysis revealed that the synergistic effects of metal nanoparticles and S doping significantly promote the transformation into the S-Co1-xFexOOH layer,which serves as the active phase for water oxidation.Additionally,ultraviolet photoelectron spectroscopy(UPS)and density functional theory(DFT)analyses indicated that incorporating metal nanoparticles and S doping increase electron density near the Fermi level and reduce reaction energy barriers,thus enhancing intrinsic OER and HER activities.This study provides a scalable strategy for synthesizing high-performance electrocatalysts for water splitting,with promising potential for broader applications. 展开更多
关键词 LDH Spontaneous reaction Metal nanoparticles water splitting
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In situ constructing lamella-heterostructured nanoporous CoFe/CoFe_(2)O_(4) and CeO_(2−x) as bifunctional electrocatalyst for high-current-density water splitting 被引量:1
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作者 Yue Deng Jin Wang +6 位作者 Shao-Fei Zhang Zhi-Jia Zhang Jin-Feng Sun Tian-Tian Li Jian-Li Kang Hao Liu Shi Bai 《Rare Metals》 2025年第2期1053-1066,共14页
The stability and electrocatalytic efficiency of transition metal oxides for water splitting is determined by geometric and electronic structure,especially under high current densities.Herein,a newly designed lamella-... The stability and electrocatalytic efficiency of transition metal oxides for water splitting is determined by geometric and electronic structure,especially under high current densities.Herein,a newly designed lamella-heterostructured nanoporous CoFe/CoFe_(2)O_(4) and CeO_(2−x),in situ grown on nickel foam(NF),holds great promise as a high-efficient bifunctional electrocatalyst(named R-CoFe/Ce/NF)for water splitting.Experimental characterization verifies surface reconstruction from CoFe alloy/oxide to highly active CoFeOOH during in situ electrochemical polarization.By virtues of three-dimensional nanoporous architecture and abundant electroactive CoFeOOH/CeO_(2−x) heterostructure interfaces,the R-CoFe/Ce/NF electrode achieves low overpotentials for oxygen evolution(η_(10)=227 mV;η_(500)=450 mV)and hydrogen evolution(η_(10)=35 mV;η_(408)=560 mV)reactions with high normalized electrochemical active surface areas,respectively.Additionally,the alkaline full water splitting electrolyzer of R-CoFe/Ce/NF||R-CoFe/Ce/NF achieves a current density of 50 mA·cm^(−2) only at 1.75 V;the decline of activity is satisfactory after 100-h durability test at 300 mA·cm^(−2).Density functional theory also demonstrates that the electron can transfer from CeO_(2−x) by virtue of O atom to CoFeOOH at CoFeOOH/CeO_(2−x) heterointerfaces and enhancing the adsorption of reactant,thus optimizing electronic structure and Gibbs free energies for the improvement of the activity for water splitting. 展开更多
关键词 Lamellar nanoporous structure Electronic structure regulation High current density Theoretical calculation Overall water splitting
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Series Reports from Professor Wei’s Group of Chongqing University:Advancements in Electrochemical Energy Conversions(2/4):Report 2:High-Performance Water Splitting Electrocatalysts
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作者 Ling Zhang Wang-Yang Wu +4 位作者 Qiu-Yue Hu Shi-Dan Yang Li Li Rui-Jin Liao Zi-Dong Wei 《电化学(中英文)》 北大核心 2025年第9期1-20,共20页
The unavailability of high-performance and cost-effective electrocatalysts has impeded the large-scale deployment of alkaline water electrolyzers.Professor Zidong Wei's group has focused on resolving critical chal... The unavailability of high-performance and cost-effective electrocatalysts has impeded the large-scale deployment of alkaline water electrolyzers.Professor Zidong Wei's group has focused on resolving critical challenges in industrial alkaline electrolysis,particularly elucidating hydrogen and oxygen evolution reaction(HER/OER)mechanisms while addressing the persistent activity-stability trade-off.This review summarizes their decade-long progress in developing advanced electrodes,analyzing the origins of sluggish alkaline HER kinetics and OER stability limitations.Professor Wei proposes a unifying"12345 Principle"as an optimization framework.For HER electrocatalysts,they have identified that metal/metal oxide interfaces create synergistic"chimney effect"and"local electric field enhancement effect",enhancing selective intermediate adsorption,interfacial water enrichment/reorientation,and mass transport under industrial high-polarization conditions.Regarding OER,innovative strategies,including dual-ligand synergistic modulation,lattice oxygen suppression,and self-repairing surface construction,are demonstrated to balance oxygen species adsorption,optimize spin states,and dynamically reinforce metal-oxygen bonds for concurrent activity-stability enhancement.The review concludes by addressing remaining challenges in long-term industrial durability and suggesting future research priorities. 展开更多
关键词 Alkaline water splitting Hydron evolution reaction Oxygen evolution reaction Intrinsic activity Stability
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Mott-Schottky electrocatalysts for water splitting
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作者 PAN Jing FU Danfei +2 位作者 YANG Hao LUO Bifu YANG Zhongjie 《燃料化学学报(中英文)》 北大核心 2025年第9期1300-1319,共20页
The electron configuration of the active sites can be effectively modulated by regulating the inherent nanostructure of the electrocatalysts,thereby enhancing their electrocatalytic performance.To tackle the unexplore... The electron configuration of the active sites can be effectively modulated by regulating the inherent nanostructure of the electrocatalysts,thereby enhancing their electrocatalytic performance.To tackle the unexplored challenge of substantial electrochemical overpotential,surface reconstruction has emerged as a necessary strategy.Focusing on key aspects such as Janus structures,overflow effects,the d-band center displacement hypothesis,and interface coupling related to electrochemical reactions is essential for water electrolysis.Emerging as frontrunners among next-generation electrocatalysts,Mott-Schottky(M-S)catalysts feature a heterojunction formed between a metal and a semiconductor,offering customizable and predictable interfacial synergy.This review offers an in-depth examination of the processes driving the hydrogen and oxygen evolution reactions(HER and OER),highlighting the benefits of employing nanoscale transition metal nitrides,carbides,oxides,and phosphides in M-S heterointerface catalysts.Furthermore,the challenges,limitations,and future prospects of employing M-S heterostructured catalysts for water splitting are thoroughly discussed. 展开更多
关键词 Mott-Schottky electrocatalysts water splitting HETEROJUNCTIONS SEMICONDUCTORS
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Breakthrough Catalyst Boosts Water Splitting
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《Bulletin of the Chinese Academy of Sciences》 2025年第2期80-81,共2页
Water oxidation-a critical yet sluggish step in green hydrogen production-is a major bottleneck for electrolysis efficiency.Traditional catalysts often degrade quickly under the high current densities needed for indus... Water oxidation-a critical yet sluggish step in green hydrogen production-is a major bottleneck for electrolysis efficiency.Traditional catalysts often degrade quickly under the high current densities needed for industrial scale. 展开更多
关键词 green hydrogen water oxidation CATALYST BREAKTHROUGH DEGRADATION water splitting electrolysis efficiency
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Binder-free bimetallic vanadium-nickel-boride-phosphide spherical structure for highly efficient and stable industrial-level water splitting
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作者 Sumiya Akter Dristy Ahasan Habib +4 位作者 Mehedi Hasan Joni Najibullah Rutuja Mandavkar Shusen Lin Jihoon Lee 《Chinese Journal of Structural Chemistry》 2025年第12期47-59,共13页
The development of robust,cost-effective and high-performance electrocatalysts is essential for industrial-scale green hydrogen production under high-current operating conditions(>500 mA/cm^(2))to ensure both high ... The development of robust,cost-effective and high-performance electrocatalysts is essential for industrial-scale green hydrogen production under high-current operating conditions(>500 mA/cm^(2))to ensure both high output and economic efficiency.Herein,a binder-free bimetallic vanadium-nickel-boride-phosphide(VNiBP)spherical electrocatalyst(SE)is synthesized via a simple hydrothermal method,followed by post-annealing.The VNiBP catalyst exhibits low overpotentials of 91 mV for the hydrogen evolution reaction(HER)and 270 mV for the oxygen evolution reaction(OER)at 100 mA/cm^(2) in 1 M KOH with stable operation over 150 h,surpassing most of the state-of-the-art electrocatalysts.The bifunctional VNiBP(-,+)exhibits a low turnover voltage of 1.57 V at 100 mA/cm^(2) and outperforms the Pt/C||RuO_(2) benchmark system up to 2000 mA/cm^(2) high-current density.The Pt/C||VNiBP hybrid configuration shows a low 2-E cell voltage of 2.55 V at 2000 mA/cm^(2) under industrially relevant conditions(6 M KOH,60℃).Notably,the VNiBP demonstrates exceptional long-term stability,maintaining continuous operation for over 6 days in both 1 M and 6 M KOH at 1000 mA/cm^(2).The outstanding overall water splitting(OWS)performance can be attributed to the synergistic combination of rapid intermediate formation,optimized adsorption/desorption kinetics,high electrochemical surface area and low charge transfer resistance offered by favorable composition and spherical morphology. 展开更多
关键词 ELECTROCATALYSIS Multi-functional HER OER Overall water splitting Industrial stability
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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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Al-O bridged NiFeO_x/BiVO_(4)photoanode for exceptional photoelectrochemical water splitting
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作者 Lina Wang Hairu Wang +4 位作者 Qian Bu Qiong Mei Junbo Zhong Bo Bai Qizhao Wang 《Chinese Chemical Letters》 2025年第4期392-397,共6页
Developing BiVO_(4)photoanode with efficient carrier transfer and fast water oxidation kinetics is the permanent pursuit to achieve the state-of-art solar-driven photoelectrochemical(PEC)water splitting.The capacity t... Developing BiVO_(4)photoanode with efficient carrier transfer and fast water oxidation kinetics is the permanent pursuit to achieve the state-of-art solar-driven photoelectrochemical(PEC)water splitting.The capacity to increase the PEC activity of BiVO_(4)by loading oxygen evolution co-catalysts(OECs)has been proven,however it suffers from sluggish charge carriers dynamics brought on by the complicated interface between BiVO_(4)and OECs as well as poor long-term durability.Herein,we connected OECs(NiFeOx)and photoanode with a Al-O bridge for bettering the PEC performance of BiVO_(4).The Al-O bridge served as a channel to extract hole from BiVO_(4)to Ni Fe Ox,thus boosting charge carriers separation and preventing BiVO_(4) from photo-corrosion.The Al-O bridging photoanode(NiFeO_(x)/Al_(2)O_(3)/BiVO_(4))demonstrated a high photocurrent density of 5.87 m A/cm^(2)at 1.23 V vs.RHE and long-term photostability in comparison to Ni Fe Ox/BiVO_(4)photoanode.This study proposes a unique technique to boost charge carriers separation between BiVO_(4) and OECs for high-efficiency solar-driven PEC water splitting. 展开更多
关键词 PEC PHOTOANODE BRIDGE OECS water splitting
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Recent advances in tantalum nitride for photoelectrochemical water splitting
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作者 Wenjie Yu Chao Feng +2 位作者 Ronghua Li Beibei Zhang Yanbo Li 《Chinese Journal of Catalysis》 2025年第1期51-82,共32页
Harnessing solar energy for renewable fuel production through artificial photosynthesis offers an ideal solution to the current energy and environmental crises.Among various methods,photoelectrochemical(PEC)water spli... Harnessing solar energy for renewable fuel production through artificial photosynthesis offers an ideal solution to the current energy and environmental crises.Among various methods,photoelectrochemical(PEC)water splitting stands out as a promising approach for direct solar-driven hydrogen production.Enhancing the efficiency and stability of photoelectrodes is a key focus in PEC water-splitting research.Tantalum nitride(Ta_(3)N_(5)),with its suitable band gap and band-edge positions for PEC water splitting,has emerged as a highly promising photoanode material.This review begins by introducing the history and fundamental characteristics of Ta_(3)N_(5),emphasizing both its advantages and challenges.It then explores methods to improve light absorption efficiency,charge separation and transfer efficiency,surface reaction rate,and the stability of Ta_(3)N_(5) photoanodes.Additionally,the review discusses the progress of research on tandem PEC cells incorporating Ta_(3)N_(5) photoanodes.Finally,it looks ahead to future research directions for Ta_(3)N_(5) photoanodes.The strategic approach outlined in this review can also be applied to other photoelectrode materials,providing guidance for their development. 展开更多
关键词 Photoelectrochemical water splitting Tantalum nitride Lightabsorption efficiency Charge separation and transfer EFFICIENCY Surfacereaction rate STABILITY
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MOF-derived NiCo bimetallic cocatalyst for enhanced photocatalytic overall water splitting
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作者 Liang Dong Jingkuo Qu +6 位作者 Tuo Zhang Guanghui Zhu Ningning Ma Chang Zhao Yi Yuan Xiangjiu Guan Liejin Guo 《Chinese Chemical Letters》 2025年第3期427-431,共5页
The development of stable and efficient non-noble metal cocatalysts has arisen as a promising yet challenging endeavor in the context of photocatalytic overall water splitting.In this study,NiCo alloy cocatalysts were... The development of stable and efficient non-noble metal cocatalysts has arisen as a promising yet challenging endeavor in the context of photocatalytic overall water splitting.In this study,NiCo alloy cocatalysts were synthesized with nickel/cobalt metal organic framework(NiCo-MOF)as source of nickel and cobalt.Systematic characterization results demonstrate the successful deposition of alloy cocatalysts onto the surface of SrTiO_(3).The prepared SrTiO_(3)loaded NiCo-alloy can generate hydrogen and oxygen in a stoichiometric ratio for photocatalytic overall water splitting,achieving an apparent quantum yield of 11.9%at 350±10 nm.Theoretical calculations indicate that the introduction of cobalt has a beneficial regulatory effect on the hydrogen evolution sites of Ni,reducing the free energy of H adsorption.The synergistic catalytic effect of bimetallic catalysts contributes to enhancing photocatalytic activity and stability.This study offers constructive insights for the development of high-efficiency and cost-effective cocatalyst systems. 展开更多
关键词 PHOTOCATALYSIS Overall water splitting Non-noble metals Alloy COCATALYST
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Electronic modulation towards MOFs as template derived CoP via engineered heteroatom defect for a highly effcient overall water splitting
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作者 Meijie Ding Zhiqiang Wei +6 位作者 Dexue Liu Wenhua Zhao Qiang Lu Zhiming Li Qingsong Yu Chenggong Lu Hua Yang 《Journal of Energy Chemistry》 2025年第2期598-607,I0012,共11页
The reasonable design of material morphology and eco-friendly electrocatalysts are essential to highly efficient water splitting.It is proposed that a promising strategy effectively regulates the electronic structure ... The reasonable design of material morphology and eco-friendly electrocatalysts are essential to highly efficient water splitting.It is proposed that a promising strategy effectively regulates the electronic structure of the d-orbitals of CoP using cerium doping in this paper,thus significantly improving the intrinsic property and conductivity of CoP for water splitting.As a result,the as-synthesize porous Ce-doped CoP micro-polyhedron composite derived from Ce-ZIF-67 as bifunctional electrocatalytic materials exhibits excellent electrocatalytic performance in both the oxygen evolution reaction(OER)and the hydrogen evolution reaction(HER),overpotentials of about 152 mV for HER at 10 mA cm^(-2)and about 352 mV for OER at 50 mA cm^(-2),and especially it shows outstanding long-term stability.Besides,an alkaline electrolyzer,using Ce0.04Co0.96P electrocatalyst as both the anode and cathode,delivers a cell voltage value of1.55 V at the current density of 10 mA cm^(-2).The calculation results of the density functional theory(DFT)demonstrate that the introduction of an appropriate amount of Ce into CoP can enhance the conductivity,and can induce the electronic modulation to regulate the selective adsorption of reaction intermediates on catalytic surface and the formation of O*intermediates(CoOOH),which exhibits an excellent electrocatalytic performance.This study provides novel insights into the design of an extraordinary performance water-splitting of the multicomponent electrocatalysts. 展开更多
关键词 Hydrogen evolution CERIUM PHOSPHIDES Oxygen evolution water splitting
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Side reactions in photocatalytic H_(2)production by overall water splitting
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作者 Chuanbiao Bie Chenchen Jiang +4 位作者 Jindi Yang Xin Sun Xiangkang Zeng Jianjun Zhang Bicheng Zhu 《Journal of Materials Science & Technology》 2025年第26期48-57,共10页
The inefficiency of photocatalytic overall water splitting is well documented and has been extensively studied.However,a crucial aspect of this process,the side reaction,has often been overlooked.In this study,we inve... The inefficiency of photocatalytic overall water splitting is well documented and has been extensively studied.However,a crucial aspect of this process,the side reaction,has often been overlooked.In this study,we investigate the impact of side reactions on photocatalytic overall water splitting by monitoring factors such as dissolved oxygen,reactive oxygen species,and hydrogen peroxide.Further insights into the side reaction are obtained through the introduction of a platinum cocatalyst.Our findings reveal that dissolved oxygen significantly contributes to the side reaction by promoting the production of hydrogen peroxide.This byproduct is generated at the expense of electrons needed for the hydrogen evolution reaction,thereby reducing the overall efficiency of photocatalytic water splitting.This article aims to provide guidance on future research directions in the field of water splitting,with a particular emphasis on photocatalysis. 展开更多
关键词 PHOTOCATALYSIS water splitting Dissolved oxygen Hydrogen peroxide COCATALYST
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Unveiling the Potential of Metal Diborides for Electrocatalytic Water Splitting:A Comprehensive Review
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作者 Ebrahim Sadeghi Sanaz Chamani +1 位作者 Naeimeh Sadat Peighambardoust Umut Aydemir 《Energy & Environmental Materials》 2025年第3期139-160,共22页
Electrocatalytic water splitting(EWS)driven by renewable energy is vital for clean hydrogen(H2)production and reducing reliance on fossil fuels.While IrO_(2) and RuO_(2) are the leading electrocatalysts for the oxygen... Electrocatalytic water splitting(EWS)driven by renewable energy is vital for clean hydrogen(H2)production and reducing reliance on fossil fuels.While IrO_(2) and RuO_(2) are the leading electrocatalysts for the oxygen evolution reaction(OER)and Pt for the hydrogen evolution reaction(HER)in acidic environments,the need for efficient,stable,and affordable materials persists.Recently,transition-metal borides(TMBs),particularly metal diborides(MDbs),have gained attention due to their unique layered crystal structures with multicentered boron bonds,offering remarkable physicochemical properties.Their nearly 2D structures boost electrochemical performance by offering high conductivity and a large active surface area,making them well-suited for advanced energy storage and conversion technologies.This review provides a comprehensive overview of the critical factors for water splitting,the crystal and electronic structures of MDbs,and their synthetic strategies.Furthermore,it examines the relationship between catalytic performance and intermediate adsorption as elucidated by first-principle calculations.The review also highlights the latest experimental advancements in MDb-based electrocatalysts and addresses the current challenges and future directions for their development. 展开更多
关键词 borophene layers ELECTROCATALYSIS hydrogen evolution reaction metal diborides oxygen evolution reaction water splitting
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d-orbital charge density regulation of SiO_(x)/RuCoO_(x) nanoparticles to boost water splitting in acidic media
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作者 Ting Zhu Yu-Hao Wang +4 位作者 Teng Sun Ye-Can Pi Xiao-Dong Pi Jun Xu Kun-Ji Chen 《Rare Metals》 2025年第9期6223-6231,共9页
Hydrogen has emerged as a promising clean energy carrier,and the development of cost-effective electrocatalysts that retain high activity under acidic media is crucial for advancing proton exchange membrane water elec... Hydrogen has emerged as a promising clean energy carrier,and the development of cost-effective electrocatalysts that retain high activity under acidic media is crucial for advancing proton exchange membrane water electrolysis(PEMWE).Here,we propose the SiO_(x)/RuCoO_(x)nanoparticles(SiO_(x)/RuCoO_(x)NPs)as bifunctional electrocatalysts for efficient hydrogen evolution reaction(HER)and oxygen evolution reaction(OER)under acidic media.The Ru-O-Si interface,along with charge transfer between Ru and Co,modulates the d-band electronic structure of the Ru site,achieving superior performance with a low HER overpotential of 18 mV at 10 mA cm^(-2)and a turnover frequency of 8.86 H_(2)s^(-1)at 100 mV.For OER,the overpotential is 217 mV at 10 mA cm^(-2).SiO_(x)/RuCoO_(x)NPs exhibit a cell voltage of 1.482 V at 10 mA cm^(-2)with an energy conversion efficiency of 83.0%.This work takes a significant step toward achieving efficient and cost-effective bifunctional electrocatalysts for water splitting,playing a critical role in the transition to clean energy technologies. 展开更多
关键词 water splitting Hydrogen energy RUTHENIUM Bifunctional electrocatalysts Acidic media
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Molybdenum-leveraged Mott-Schottky heterojunction for advanced water splitting and urea electrolysis
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作者 Zhihui Huang Jin Zhang +10 位作者 Muhammad Humayun Yuxiao Liu Wenbo Xiao Cuidi Feng Kai Zhao Bing Wu Yanjun Fu Mohamed Bououdina Huaming Zhang Guoxujia Chen Chundong Wang 《Journal of Energy Chemistry》 2025年第12期94-108,I0004,共16页
Levering the local electron density allows for varying the adsorption and/or desorption feature of catalysts,enabling to boost the reaction kinetics.Mott-Schottky barrier,in which it processes different Fermi levels,f... Levering the local electron density allows for varying the adsorption and/or desorption feature of catalysts,enabling to boost the reaction kinetics.Mott-Schottky barrier,in which it processes different Fermi levels,favors the electron transport at the interface.Here,a Mo-doped CoN is coupled with NiFe-LDH for constructing a Mott-Schottky heterojunction,addressing enhanced hydrogen evolution reaction(HER),oxygen evolution reaction(OER),and urea oxidation reaction(UOR)compared with the individual counterparts.The incorporation of high-valence Mo species and the formation of heterostructures significantly improve the corrosion resistance and electrocatalytic performance of Mo-CoN@NiFeLDH,requiring only 76 mV overpotential for HER and 257 mV for OER to achieve a high current density of 100 mA cm^(-2)in 1 M KOH.The advanced nature of our as-prepared Mott-Schottky heterojunction could be further evidenced by its robust nature of a configured alkaline electrolyzer for stable working over666 h at 200 mA cm^(-2).Impressively,only 1.692 V of cell voltage is required to yield a current density of 300 mA cm^(-2)over the as-prepared urea electrolyzer.This strategy for va rying the local electron density via construction of Mott-Schottky barrier could be regarded as a promising routine to achieve low-energy consumption green hydrogen generation. 展开更多
关键词 Mo-doped CoN Mott-Schottky heterojunction UOR Overall water splitting DFT calculations
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