4.8 Article

FeNiCrCoMn High-Entropy Alloy Nanoparticles Loaded on Carbon Nanotubes as Bifunctional Oxygen Catalysts for Rechargeable Zinc-Air Batteries

Related references

Note: Only part of the references are listed.
Article Chemistry, Physical

Ni3Fe/Ni3Fe(OOH)x dynamically coupled on wood-derived nitrogen doped carbon as a bifunctional electrocatalyst for rechargeable zinc-air batteries

Yi Wang et al.

Summary: In this study, a monolithic bifunctional catalyst, FeNi3@NWC, is constructed by in situ growth of FeNi3 alloy on nitrogen-doped wood-derived carbon. The FeNi3 alloy nanoparticles coupled with nitrogen-doped carbon accelerate the catalytic activity towards oxygen reduction reaction (ORR) by promoting proton generation on FeNi3 and transfer to nitrogen-doped carbon. The formation of Ni1-xFexOOH on the surface of FeNi3 alloy effectively accelerates oxygen evolution reaction (OER) through charge transfer. The construction of double active sites through a synergistic mechanism between FeNi3 and catalytically active carbon ignites prominent catalytic activity with superior stability. This work provides remarkable inspiration for the rational design of biomass-derived efficient electrocatalysts and facilitates the practical application of energy storage and conversion devices.

JOURNAL OF MATERIALS CHEMISTRY A (2023)

Article Chemistry, Physical

Hollow nanocage with skeleton Ni-Fe sulfides modified by N-doped carbon quantum dots for enhancing mass transfer for oxygen electrocatalysis in zinc-air battery

Rongyue Wang et al.

Summary: Hollow bimetallic sulfide nanocages with anchored N-doped carbon quantum dots were synthesized for oxygen reduction/evolution reactions in zinc-air batteries. The nanocages exhibited excellent performance and stability, allowing for long-term cycling.

APPLIED CATALYSIS B-ENVIRONMENTAL (2023)

Article Chemistry, Physical

Efficient synergistic effect of trimetallic organic frameworks derived as bifunctional catalysis for the rechargeable zinc-air flow battery

Jinling Xue et al.

Summary: An efficient and low-cost bifunctional catalyst, Fe/12Zn/Co-NCNTs, is prepared and shows excellent electrochemical activity in both oxygen reduction reaction (ORR) and oxygen evolution reaction (OER). This catalyst significantly improves open circuit voltage, peak power density, and cycle lifespan in rechargeable zinc-air flow batteries (ZAFBs).

CARBON (2023)

Article Nanoscience & Nanotechnology

Solar-Light-Responsive Zinc-Air Battery with Self-Regulated Charge-Discharge Performance based on Photothermal Effect

Shushan Zheng et al.

Summary: Significantly improving the performance of Zn-air batteries is a challenging task due to the limitations of thermodynamic equilibrium potential. This study presents a prototype of a multi-functional air electrode material, FeNi-S,N-HCS, for designing photoresponsive all-solid-state Zn-air batteries based on the photothermal effect. The FeNi-S,N-HCS electrode exhibits superior photothermal effect, allowing for improved power density, reduced charge voltage, and prolonged cycle lifetime under illumination.

ACS APPLIED MATERIALS & INTERFACES (2023)

Article Chemistry, Physical

Recent progress in the development of efficient biomass-based ORR electrocatalysts

Anthony Dessalle et al.

Summary: Platinum is an expensive and scarce catalyst, limiting the large-scale commercialization of Pt-based electrochemical devices. The slow oxygen reduction reaction (ORR) with Pt in acidic media has led to the exploration of Pt-free catalysts. This review critically discusses the influence of the physicochemical and electrochemical properties of biomass-derived, carbon-based electrocatalysts for the ORR over the past decade.

CARBON (2023)

Article Chemistry, Physical

In situ construction of Co@nitrogen-doped carbon/Ni nanocomposite for broadband electromagnetic wave absorption

Naixin Zhai et al.

Summary: The Co@nitrogen-doped carbon/Ni (Co@NC/Ni) nanocomposites were synthesized by hydrothermal and liquid-phase deposition methods, and then carbonized at different temperatures under N2 atmosphere. The tunable multicomponent synergistic loss mechanism and multiple heterogeneous interfaces of these composites make them efficient electromagnetic wave absorbing materials. The metallic components provide magnetic loss and improved impedance matching, while also acting as catalysts to induce the formation of graphitized carbon and enhancing conductive loss. In addition, more heterogeneous interfaces and defects were generated inside the sample, promoting dielectric loss. The Co@NC/Ni nanocomposite carbonized at 600 degrees C exhibited excellent electromagnetic wave absorbing performance, with a minimum reflection loss of -47.10 dB and an effective absorption bandwidth of 6.84 GHz at 2.5 mm with a filling ratio of 30%. This study provides a strategy of heterogeneous interface construction for future application of high-performance magnetic carbon-based electromagnetic wave absorbing materials.

CARBON (2023)

Article Chemistry, Physical

Tailoring the plasmonic properties of gold-liposome nanohybrids as a potential powerful tool for light-mediated therapies

Jiana Hu et al.

Summary: In this study, double-layered MXene-Fe/CNT/SR composites were successfully synthesized via a green and facile method. The composites exhibited excellent microwave absorption properties due to appropriate impedance matching, strengthened internal reflection, polarization, magnetic loss, and conductive loss. The developed composites have great potential for high-performance microwave absorption applications.

CARBON (2023)

Article Chemistry, Physical

N, S co-doped carbon with embedment of FeNi alloy as bifunctional oxygen electrocatalysts for rechargeable Zinc-air batteries

Run Wu et al.

Summary: This work presents a facile strategy for designing economical and efficient 3D catalysts for zinc-air batteries. The catalyst fabricated in this study, FeNi alloy/porous carbon, exhibits excellent oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) performance, resulting in a narrow voltage gap and high peak power density. This catalyst shows great potential for applications in zinc-air batteries and other energy devices.

CARBON (2023)

Article Chemistry, Physical

In situ formation of self-antistacking FeCoOx on N-doped graphene: A 3D-on-2D nanoarchitecture for long-life Zn-air batteries

Zehao Zheng et al.

Summary: A cost-effective bifunctional oxygen electrocatalyst with a self-antistacking structure was fabricated, enhancing the activity of the oxygen reduction and oxygen evolution reactions in Zn-air batteries. The novel architecture showed excellent capacity and long-term cyclability.

CARBON ENERGY (2023)

Article Chemistry, Multidisciplinary

Atomic Fe-N4/C in Flexible Carbon Fiber Membrane as Binder-Free Air Cathode for Zn-Air Batteries with Stable Cycling over 1000 h

Leping Yang et al.

Summary: In this study, a Fe-N-4/C catalyst immobilized on a carbon fiber membrane was synthesized, showing excellent catalytic activity for oxygen reduction and evolution reactions through sulfur doping to modulate atomic configurations. The catalyst demonstrated superior electrochemical performance and cycling stability, outperforming commercial Pt/C and most reported M-N-x/C catalysts. The findings offer promising prospects for flexible electronic device applications.

ADVANCED MATERIALS (2022)

Article Engineering, Environmental

Amorphous aerogel of trimetallic FeCoNi alloy for highly efficient oxygen evolution

Su Yan et al.

Summary: The study successfully prepared a non-noble FeCoNi trimetallic aerogel, which exhibited excellent oxygen evolution activity and stability in alkaline conditions, with a remarkably low overpotential and a small Tafel slope.

CHEMICAL ENGINEERING JOURNAL (2022)

Article Nanoscience & Nanotechnology

Heteroatom-Doped Carbon-Encapsulated FeP Nanostructure: A Multifunctional Electrocatalyst for Zinc-Air Battery and Water Electrolyzer

Mopidevi Manikanta Kumar et al.

Summary: In this study, a nitrogen and phosphorus dual-doped mesoporous carbon-encapsulated iron phosphide nanostructure was synthesized, and its multifunctional electrocatalytic activity towards various reactions in renewable energy technologies was demonstrated. The material showed excellent performance in zinc-air batteries and alkaline water-splitting applications.

ACS APPLIED MATERIALS & INTERFACES (2022)

Article Nanoscience & Nanotechnology

FeCoNiMnCr High-Entropy Alloy Nanoparticle-Grafted NCNTs with Promising Performance in the Ohmic Polarization Region of Fuel Cells

Ravi Nandan et al.

Summary: This study presents a user-friendly methodology for the successful design of targeted single-phased face-centered cubic FeCoNiMnCr high-entropy alloy nanoparticle-grafted N-doped carbon nanotubes. The designed nanostructure exhibits advantages of N-doped carbon and high-entropy alloy nanoparticles, showing promising performance in promoting the electrochemical oxygen reduction reaction. The presented methodology has the potential to widen the domain of high-entropy alloys for various applications.

ACS APPLIED MATERIALS & INTERFACES (2022)

Article Chemistry, Multidisciplinary

Strategic Modulation of Target-Specific Isolated Fe,Co Single-Atom Active Sites for Oxygen Electrocatalysis Impacting High Power Zn-Air Battery

Subhajit Sarkar et al.

Summary: In this study, a bifunctional electrocatalyst with target-specific Fe-N-4/C and Co-N-4/C isolated active sites was developed, showing a symbiotic effect on overall oxygen electrocatalysis performances. The dualism of N-dopants and binary metals lowered the d-band centers of Fe and Co in the catalyst, improving the overpotential of the catalytic processes. The Fe, Co, N-C catalyst demonstrated a high areal power density in both liquid and solid-state Zn-air batteries, making it a suitable candidate for air cathode material in ZABs.

ACS NANO (2022)

Article Chemistry, Physical

Pearl necklace-like CoMn-based nanostructures derived from metal-organic frames for enhanced electromagnetic wave absorption

Yuping Wang et al.

Summary: This study presents a novel approach to address the issue of particle agglomeration in Metal-Organic Frameworks (MOFs)-derived magnetic nanostructures by crosslinking ultra-long nanowires. Utilizing CoZn-MOF as a precursor, high-performance functional materials with excellent electromagnetic wave absorption properties were synthesized.

CARBON (2022)

Article Chemistry, Multidisciplinary

Enhancement of oxygen evolution reaction by X-doped (X 1/4 Se, S, P) holey graphitic carbon shell encapsulating NiCoFe nanoparticles: a combined experimental and theoretical study

A. El Jaouhari et al.

Summary: Encapsulating transition-metal alloyed nanoparticles in graphitic carbon shells and doping non-metallic elements have shown to enhance the catalytic activity towards oxygen evolution reaction (OER), reducing overpotential and improving the long-term stability. This improvement is attributed to the optimization of Gibbs free energy of OER intermediates, leading to a lower energy input for the rate-determining step.

MATERIALS TODAY CHEMISTRY (2022)

Article Chemistry, Physical

CoNi nanoalloy-Co-N4 composite active sites embedded in hierarchical porous carbon as bi-functional catalysts for flexible Zn-air battery

Yisi Liu et al.

Summary: Utilizing bifunctional electrocatalysts with excellent activity and stability for both oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) is crucial for the practical application of rechargeable metal-air batteries. This study presents a novel strategy of bimetallic-ion co-exchange and pyrolysis using bioMOF-1 as the self-template to synthesize NiCo nanoalloy-Co-N-4 embedded hierarchical porous carbon (CoNiCoN4-HPC-900) with outstanding electrocatalytic activity for ORR and OER in alkaline solution.

NANO ENERGY (2022)

Article Chemistry, Physical

Oxygen Plasma-Activated NiFe Prussian Blue Analogues Interconnected N-Doped Carbon Nanotubes as a Bifunctional Electrocatalyst for a Rechargeable Zinc-Air Battery

Sofiannisa Aulia et al.

Summary: In this study, a dual active oxygen transformation electrocatalyst was synthesized by utilizing surface engineering through surface doping and plasma activation, demonstrating excellent performance and stability in a rechargeable zinc-air battery.

ACS APPLIED ENERGY MATERIALS (2022)

Article Nanoscience & Nanotechnology

Anchoring Bimetal Single Atoms and Alloys on N-Doping-Carbon Nanofiber Networks for an Efficient Oxygen Reduction Reaction and Zinc-Air Batteries

Bowen Liu et al.

Summary: This study reports a bimetal single-atom-based nanofiber network for efficient ORR electrocatalysis and zinc-air batteries. The versatile process developed in this study allows for mass production of efficient composite electrocatalysts. The bimetal SAC-based nanofiber networks show superior catalytic performance and device performance, attributed to the appealing intrinsic activity, the carbon shielding effect, and the hierarchical porous structure.

ACS APPLIED MATERIALS & INTERFACES (2022)

Article Nanoscience & Nanotechnology

Hierarchal Porous Graphene-Structured Electrocatalysts with Fe-N5 Active Sites Modified with Fe Clusters for Enhanced Performance Toward Oxygen Reduction Reaction

Liqiu Liu et al.

Summary: By fabricating a catalyst with Fe???N5 active sites and Fe clusters on porous graphene, excellent ORR activity and superior stability are achieved. The construction of mass and electron transfer channels allows more active sites to be accessible and facilitates the ORR process. In a homemade zinc-air battery, this catalyst as the cathode catalyst exhibits high power density, revealing its potential to replace precious Pt catalysts.

ACS APPLIED MATERIALS & INTERFACES (2022)

Article Nanoscience & Nanotechnology

A Combination of Push Effect Strategy with Triple-Phase- Boundary Engineering on Iron Porphyrin-Based MOFs: Enhanced Selectivity and Activity for Oxygen Reduction

Wei Yan et al.

Summary: In this study, the push effect strategy combined with triple-phase-boundary engineering was used to target single Fe-N4 sites. The addition of hydrophobic octylpyridine groups provided sufficient electrons and created effective reaction sites, enhancing the ORR activity. Furthermore, TPB engineering was utilized to construct a zinc-air battery based on the catalyst, demonstrating its potential for practical applications. The push effect mechanism on ORR was revealed through various techniques.

ACS APPLIED MATERIALS & INTERFACES (2022)

Article Chemistry, Physical

A 3D rGO-supported NiFe2O4 heterostructure from sacrificial polymer-assisted exfoliation of NiFe-LDH for efficient oxygen evolution reaction

Ping Zhang et al.

Summary: A new and efficient strategy for preparing NiFe2O4 electrocatalysts supported by a three-dimensional graphene network was reported. The NiFe2O4 was loaded on the graphene network, preventing agglomeration and providing efficient electron transmission channels. The as-prepared NFO/3DGN-10 exhibited excellent electrocatalytic activity and stability for oxygen evolution reaction in an alkaline solution.

CARBON (2022)

Article Chemistry, Physical

Isolation anchoring strategy for in situ synthesis of iron single-atom catalysts towards long-term rechargeable zinc-air battery

Lijuan Cao et al.

Summary: In this study, a facile isolation anchoring strategy was reported for in situ formation of porous N-doped carbon catalysts (Fe-1/NC) rich in Fe single atoms. The Fe-1/NC catalyst exhibited remarkable stability and superior oxygen reduction reaction (ORR) electrocatalytic activity under both alkaline and acidic conditions.

CARBON (2022)

Review Chemistry, Multidisciplinary

Review of High Entropy Alloys Electrocatalysts for Hydrogen Evolution, Oxygen Evolution, and Oxygen Reduction Reaction

Xiaoran Huo et al.

Summary: This paper reviews the structure characteristics and research progress of high-entropy alloys as electrocatalysts, including the hydrogen evolution reaction, oxygen evolution reaction, and oxygen reduction reaction. Additionally, the future development of HEAs in the field of energy conversion is also discussed.

CHEMICAL RECORD (2022)

Article Chemistry, Physical

FeCo nanoalloys encapsulated in pod-like N-doped carbon nanotubes as efficient oxygen reduction reaction electrocatalysts for zinc-air batteries

Min Zhu et al.

Summary: The study develops a novel catalyst based on FeCo alloy nanoparticles encapsulated by pod-like N-doped carbon nanotubes. The optimized catalyst exhibits a half-wave potential close to commercial Pt/C in the oxygen reduction reaction, along with superior stability and methanol tolerance. Moreover, when utilized as a cathode in zinc-air batteries, the catalyst achieves high open-circuit potential, remarkable peak power density, and satisfactory stability.

JOURNAL OF ALLOYS AND COMPOUNDS (2022)

Article Chemistry, Physical

High-Entropy Alloy with Mo-Coordination as Efficient Electrocatalyst for Oxygen Evolution Reaction

Yunjie Mei et al.

Summary: This study reports a strategy for achieving efficient and stable high-entropy alloy (HEA) catalysts with molybdenum coordination, which can be used for electrochemical hydrolytic hydrogen production. The HEA catalyst exhibits low overpotential, high turnover frequency, and high OER stability in alkaline medium. Methanol molecular probe experiment and kinetic simulation results support the effectiveness of this strategy.

ACS CATALYSIS (2022)

Article Chemistry, Physical

Prussian Blue Analogue-Derived Bimetallic CoFe@NC as Effective and Extremely Stable Oxygen Reduction Electrocatalysts for Mg-Air Battery

Xiaoyang Dong et al.

Summary: The slow dynamics of the oxygen reduction reaction (ORR) in the air cathode of the magnesium-air battery is a major challenge for its development. This research focuses on preparing effective and stable ORR electrocatalysts using tunable Prussian blue analogues as precursors. The bimetallic CoFe@NC electrocatalysts derived from this method exhibit better ORR activities and stability compared to single metal Fe@NC electrocatalysts, offering a potential solution for improving the performance of magnesium-air batteries.

ACS APPLIED ENERGY MATERIALS (2022)

Review Electrochemistry

Recent Progress in High Entropy Alloys for Electrocatalysts

Kun Wang et al.

Summary: This paper reviews the recent progress on the preparation methods, characterization techniques, electrocatalytic applications and functional mechanisms of high entropy alloy-based electrocatalysts for hydrogen evolution, oxygen evolution and oxygen reduction reactions. It discusses the synthesis approaches for high entropy alloys and their materials characterizations. It also summarizes the electrocatalytic performance of high entropy alloys for various electrocatalytic reactions and proposes further research directions.

ELECTROCHEMICAL ENERGY REVIEWS (2022)

Article Nanoscience & Nanotechnology

Synergistic Effect of Sn and Fe in Fe-Nx Site Formation and Activity in Fe-N-C Catalyst for ORR

Marco Mazzucato et al.

Summary: This study explores the effect of Sn on the formation, activity, and selectivity of Fe-N-C catalysts in both acid and alkaline media. The optimal Sn/Fe ratio shows higher activity. Performance and durability tests were also conducted on Pt-free materials.

ACS APPLIED MATERIALS & INTERFACES (2022)

Article Nanoscience & Nanotechnology

An Ultrastable Rechargeable Zinc-Air Battery Using a Janus Superwetting Air Electrode

Xuejiang Zhang et al.

Summary: In this study, a Janus air electrode with two different catalytic layers was designed and fabricated to address the challenges of the air electrode in rechargeable zinc-air batteries. By improving mass transport and adapting to the different requirements during charging and discharging, the Janus air electrode showed low voltage gap and excellent stability performance for the ZAB.

ACS APPLIED MATERIALS & INTERFACES (2022)

Article Nanoscience & Nanotechnology

Candied Haws-Like Fe-N-C Catalysts with Broadened Carbon Interlayer Spacing for Efficient Zinc-Air Battery

Jingjun Liu et al.

Summary: This study provides a smart strategy to construct a "candied haws-like" Fe-N-C catalyst with broadened carbon interlayer spacing and enriched FeN4 active sites, which exhibits superior ORR performance and higher power density in zinc-air batteries.

ACS APPLIED MATERIALS & INTERFACES (2022)

Article Nanoscience & Nanotechnology

Molecular Analysis of the Unusual Stability of an IrNbOx Catalyst for the Electrochemical Water Oxidation to Molecular Oxygen (OER)

Camillo Spori et al.

Summary: Adoption of PEM water electrolysis technology on a global scale requires significant reduction of iridium loadings in the anode catalyst layers, which has been a challenge due to limited stability of new catalysts with reduced Ir content. This study investigates a novel family of iridium-niobium mixed metal oxide thin-film catalysts for the oxygen evolution reaction, some of which show enhanced stability and reduced Ir dissolution compared to industry benchmark catalysts. Experimental and computational analyses reveal specific catalysts and strategies for gradually reducing the Ir demand of PEM water electrolyzers for wider commercial adoption.

ACS APPLIED MATERIALS & INTERFACES (2021)

Review Chemistry, Physical

NiCo-Based Electrocatalysts for the Alkaline Oxygen Evolution Reaction: A Review

Yong-Chao Zhang et al.

Summary: NiCo-based electrocatalysts exhibit high activity and stability in the OER process, and regulating their structure and composition can enhance performance. The OER mechanism, activity descriptors, and atomic and electronic structure-activity relationships based on NiCo-based electrocatalysts have been elucidated through experimental and theoretical analyses, with challenges and future prospects for improving performance proposed.

ACS CATALYSIS (2021)

Article Chemistry, Physical

The Untold Tale of the ORR Polarization Curve

Ravi Nandan et al.

Summary: By studying the relationship between ORR polarization curves and fuel cell parameters, a one-to-one mapping has been revealed, providing researchers with new insights and methods to evaluate the suitability of electrocatalysts.

JOURNAL OF PHYSICAL CHEMISTRY C (2021)

Review Chemistry, Multidisciplinary

Mapping the Design of Electrolyte Materials for Electrically Rechargeable Zinc-Air Batteries

Xiaorui Liu et al.

Summary: Electrically rechargeable zinc-air batteries (ERZABs) are considered as promising power sources, but achieving long cycle life and high energy/power densities remains a challenge. The electrolyte, serving as the ionic conductor, plays a critical role in the performance and safety of ERZABs. Recent advances in electrolyte materials aim to enhance the overall performance of ERZABs.

ADVANCED MATERIALS (2021)

Article Chemistry, Multidisciplinary

Sodium-Decorated Amorphous/Crystalline RuO2 with Rich Oxygen Vacancies: A Robust pH-Universal Oxygen Evolution Electrocatalyst

Lijie Zhang et al.

Summary: The study developed sodium-decorated amorphous/crystalline RuO2 with rich oxygen vacancies as a pH-universal OER electrocatalyst, showing remarkable acid resistance and high catalytic stability. The introduction of Na dopant and oxygen vacancy in RuO2 was found to lower the energy barrier for OER by weakening the adsorption strength of the OER intermediates.

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION (2021)

Article Chemistry, Physical

Deflagration method synthesizing N, S co-doped oxygen-functionalized carbons as a bifunctional catalyst for oxygen reduction and oxygen evolution reaction

Shuyu Zhou et al.

Summary: In this study, a rapid deflagration method was used to synthesize N and S co-doped and oxygen-functionalized carbon materials, which exhibited excellent ORR and OER bifunctional catalytic reactivity with a small potential gap compared to commercial catalysts.

CARBON (2021)

Review Chemistry, Multidisciplinary

Non-Noble-Metal-Based Electrocatalysts toward the Oxygen Evolution Reaction

Zhi-Peng Wu et al.

ADVANCED FUNCTIONAL MATERIALS (2020)

Review Chemistry, Multidisciplinary

Metal-Organic Frameworks Based Electrocatalysts for the Oxygen Reduction Reaction

Xue Feng Lu et al.

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION (2020)

Article Chemistry, Multidisciplinary

3D Printed Mechanically Robust Graphene/CNT Electrodes for Highly Efficient Overall Water Splitting

Peng Meiwen et al.

ADVANCED MATERIALS (2020)

Article Chemistry, Applied

Active sites engineering of Pt/CNT oxygen reduction catalysts by atomic layer deposition

Jie Gan et al.

JOURNAL OF ENERGY CHEMISTRY (2020)

Article Green & Sustainable Science & Technology

NiCo-N-doped carbon nanotubes based cathode catalyst for alkaline membrane fuel cell

Saadia Hanif et al.

RENEWABLE ENERGY (2020)

Article Multidisciplinary Sciences

Highly efficient decomposition of ammonia using high-entropy alloy catalysts

Pengfei Xie et al.

NATURE COMMUNICATIONS (2019)

Review Chemistry, Multidisciplinary

Opportunities and Challenges of Interface Engineering in Bimetallic Nanostructure for Enhanced Electrocatalysis

Qi Shao et al.

ADVANCED FUNCTIONAL MATERIALS (2019)

Article Multidisciplinary Sciences

A strategy of designing high-entropy alloys with high-temperature shape memory effect

Je In Lee et al.

SCIENTIFIC REPORTS (2019)

Article Chemistry, Physical

Catalyst Support in Oxygen Electrocatalysis: A Case Study with CoFe Alloy Electrocatalyst

Arpan Samanta et al.

JOURNAL OF PHYSICAL CHEMISTRY C (2018)

Article Chemistry, Multidisciplinary

A Universal Strategy to Metal Wavy Nanowires for Efficient Electrochemical Water Splitting at pH-Universal Conditions

Jian Yang et al.

ADVANCED FUNCTIONAL MATERIALS (2018)

Article Chemistry, Multidisciplinary

FeCoNi Alloy as Noble Metal-Free Electrocatalyst for Oxygen Evolution Reaction (OER)

Soumen Saha et al.

CHEMISTRYSELECT (2017)

Article Multidisciplinary Sciences

High-performance transition metal-doped Pt3Ni octahedra for oxygen reduction reaction

Xiaoqing Huang et al.

SCIENCE (2015)

Article Chemistry, Multidisciplinary

Oxygen Reduction Reaction in a Droplet on Graphite: Direct Evidence that the Edge Is More Active than the Basal Plane

Anli Shen et al.

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION (2014)