High-temperature shock synthesis of high-entropy-alloy nanoparticles for catalysis
暂无分享,去创建一个
[1] Peng Liu,et al. Ultrafastly activated needle coke as electrode material for supercapacitors , 2022, Progress in Natural Science: Materials International.
[2] Y. Yamauchi,et al. Porous Nanoarchitectures of Nonprecious Metal Borides: From Controlled Synthesis to Heterogeneous Catalyst Applications , 2022, ACS Catalysis.
[3] Xiaopeng Han,et al. Rapid Joule-Heating Synthesis for Manufacturing High-Entropy Oxides as Efficient Electrocatalysts. , 2022, Nano letters.
[4] Yan Chen,et al. Strong yet ductile nanolamellar high-entropy alloys by additive manufacturing , 2022, Nature.
[5] Qiming Liu,et al. Ultrafast synthesis of electrocatalysts , 2022, Trends in Chemistry.
[6] Chen Li,et al. High‐entropy alloy catalysts: From bulk to nano toward highly efficient carbon and nitrogen catalysis , 2022, Carbon Energy.
[7] Dawei Song,et al. A Low-Cost Liquid-Phase Method of Synthesizing High-Performance Li6PS5Cl Solid-Electrolyte. , 2022, ACS applied materials & interfaces.
[8] Jinsong Wu,et al. High-entropy alloy nanoparticles as a promising electrocatalyst to enhance activity and durability for oxygen reduction , 2022, Nano Research.
[9] I. Kevrekidis,et al. Programmable heating and quenching for efficient thermochemical synthesis , 2022, Nature.
[10] J. Miao,et al. High-entropy nanoparticles: Synthesis-structure-property relationships and data-driven discovery , 2022, Science.
[11] Wenhui Shi,et al. High‐entropy alloy stabilized and activated Pt clusters for highly efficient electrocatalysis , 2022 .
[12] J. Tour,et al. Machine Learning Guided Synthesis of Flash Graphene , 2022, Advanced materials.
[13] J. Tour,et al. Phase controlled synthesis of transition metal carbide nanocrystals by ultrafast flash Joule heating , 2022, Nature communications.
[14] OUP accepted manuscript , 2022, National Science Review.
[15] Q. Yan,et al. High‐entropy alloys and compounds for electrocatalytic energy conversion applications , 2021, SusMat.
[16] Lei Wang,et al. Sol-gel pore-sealing strategy imparts tailored electronic structure to the atomically dispersed Ru sites for efficient oxygen reduction reaction , 2021, Energy Storage Materials.
[17] Lin Liu,et al. Enthalpy induced phase partition toward hierarchical, nanostructured high-entropy alloys , 2021, Nano Research.
[18] Siyu Wu,et al. Microwave synthesis of single-phase nanoparticles made of multi-principal element alloys , 2021, Nano Research.
[19] J. Yeh,et al. A perspective on the catalysis using the high entropy alloys , 2021 .
[20] W. Chu,et al. Sub-2 nm Ultrasmall High-Entropy Alloy Nanoparticles for Extremely Superior Electrocatalytic Hydrogen Evolution. , 2021, Journal of the American Chemical Society.
[21] Lei Wang,et al. Ultrafast Generation of Nanostructured Noble Metal Aerogels by a Microwave Method for Electrocatalytic Hydrogen Evolution and Ethanol Oxidation , 2021, ACS Applied Nano Materials.
[22] O. Cretu,et al. Heterostructuring Mesoporous 2D Iridium Nanosheets with Amorphous Nickel Boron Oxide Layers to Improve Electrolytic Water Splitting , 2021, Small methods.
[23] S. Barcikowski,et al. Laser-generated high entropy metallic glass nanoparticles as bifunctional electrocatalysts , 2021, Nano Research.
[24] Alfred Ludwig,et al. What Makes High‐Entropy Alloys Exceptional Electrocatalysts? , 2021, Angewandte Chemie.
[25] Shaomao Xu,et al. Scalable Synthesis of High Entropy Alloy Nanoparticles by Microwave Heating. , 2021, ACS nano.
[26] J. Yeh,et al. Rapid Fabrication of High-Entropy Ceramic Nanomaterials for Catalytic Reactions. , 2021, ACS nano.
[27] Xibao Li,et al. Microwave sintered porous CoCrFeNiMo high entropy alloy as an efficient electrocatalyst for alkaline oxygen evolution reaction , 2021, Journal of Materials Science & Technology.
[28] Xiaogang Li,et al. Recent advances on environmental corrosion behavior and mechanism of high-entropy alloys , 2021, Journal of Materials Science & Technology.
[29] A. Thind,et al. 2D High‐Entropy Transition Metal Dichalcogenides for Carbon Dioxide Electrocatalysis , 2021, Advanced materials.
[30] Yonggang Yao,et al. Continuous Fly-Through High-Temperature Synthesis of Nanocatalysts. , 2021, Nano letters.
[31] Yonggang Yao,et al. Extreme mixing in nanoscale transition metal alloys , 2021, Matter.
[32] S. Kashani-Bozorg,et al. Ultrafast green microwave-assisted synthesis of high-entropy oxide nanoparticles for Li-ion battery applications , 2021 .
[33] Liangbing Hu,et al. A high-entropy phosphate catalyst for oxygen evolution reaction , 2021 .
[34] S. Pennycook,et al. High-entropy-stabilized chalcogenides with high thermoelectric performance , 2021, Science.
[35] Jeremy L. Hitt,et al. A high throughput optical method for studying compositional effects in electrocatalysts for CO2 reduction , 2021, Nature Communications.
[36] J. Tour,et al. Millisecond Conversion of Metastable 2D Materials by Flash Joule Heating. , 2021, ACS nano.
[37] R. Franz,et al. Influence of the nitrogen content on the structure and properties of MoNbTaVW high entropy alloy thin films , 2021 .
[38] Jin-an Shi,et al. A stable low-temperature H2-production catalyst by crowding Pt on α-MoC , 2021, Nature.
[39] Yonggang Yao,et al. Denary oxide nanoparticles as highly stable catalysts for methane combustion , 2021, Nature Catalysis.
[40] B. Cantor. Multicomponent high-entropy Cantor alloys , 2020, Progress in Materials Science.
[41] Weijia Zhou,et al. Non-thermal radiation heating synthesis of nanomaterials. , 2020, Science bulletin.
[42] Younan Xia,et al. Physical Transformations of Noble-Metal Nanocrystals upon Thermal Activation. , 2020, Accounts of chemical research.
[43] P. Plaza-González,et al. Hydrogen production via microwave-induced water splitting at low temperature , 2020, Nature Energy.
[44] M. Zachariah,et al. In Situ Oxidation Studies of High-Entropy Alloy Nanoparticles. , 2020, ACS nano.
[45] Liangbing Wang,et al. High-Entropy Alloys as a Platform for Catalysis: Progress, Challenges, and Opportunities , 2020 .
[46] Dongdong Xiao,et al. Origin of functionality for functional materials at atomic scale , 2020 .
[47] Zhicheng Zhang,et al. High‐Temperature Shock Enabled Nanomanufacturing for Energy‐Related Applications , 2020, Advanced Energy Materials.
[48] L. Gu,et al. Iridium single-atom catalyst on nitrogen-doped carbon for formic acid oxidation synthesized using a general host–guest strategy , 2020, Nature Chemistry.
[49] B. Dunn,et al. A general method to synthesize and sinter bulk ceramics in seconds , 2020, Science.
[50] R. Franz,et al. Angular-dependent deposition of MoNbTaVW HEA thin films by three different physical vapor deposition methods , 2020, Surface and Coatings Technology.
[51] Steven D. Lacey,et al. High-throughput, combinatorial synthesis of multimetallic nanoclusters , 2020, Proceedings of the National Academy of Sciences.
[52] C. Tiwary,et al. High-Entropy Alloys as Catalysts for the CO2 and CO Reduction Reactions: Experimental Realization , 2020 .
[53] Liangbing Hu,et al. Aerosol synthesis of high entropy alloy nanoparticles. , 2020, Langmuir : the ACS journal of surfaces and colloids.
[54] Yunfei Xue,et al. High strength and ductility AlCrFeNiV high entropy alloy with hierarchically heterogeneous microstructure prepared by selective laser melting , 2020 .
[55] Yonggang Yao,et al. Continuous 2000 K droplet-to-particle synthesis , 2020 .
[56] J. Tour,et al. Gram-scale bottom-up flash graphene synthesis , 2020, Nature.
[57] C. Tasan,et al. Natural-mixing guided design of refractory high-entropy alloys with as-cast tensile ductility , 2019, Nature Materials.
[58] Shi-ze Yang,et al. Room-temperature Synthesis of High-entropy Perovskite Oxide Nanoparticle Catalysts via Ultrasonication-based Method. , 2019, ChemSusChem.
[59] Shaomao Xu,et al. Rapid, High-Temperature, In Situ Microwave Synthesis of Bulk Nanocatalysts. , 2019, Small.
[60] Yi Zhou,et al. Facile Synthesis of Uniform Metal Carbide Nanoparticles from MOFs by Laser Metallurgy. , 2019, ACS applied materials & interfaces.
[61] T. Batchelor,et al. High-Entropy Alloys as Catalysts for the CO2 and CO Reduction Reactions , 2019, ACS Catalysis.
[62] T. Pollock,et al. Protocols for High Temperature Assisted-Microwave Preparation of Inorganic Compounds , 2019, Chemistry of Materials.
[63] Shaomao Xu,et al. Uniform, Scalable, High-Temperature Microwave Shock for Nanoparticle Synthesis through Defect Engineering , 2019, Matter.
[64] Jun Lu,et al. High temperature shockwave stabilized single atoms , 2019, Nature Nanotechnology.
[65] Ye Pan,et al. Novel and promising electrocatalyst for oxygen evolution reaction based on MnFeCoNi high entropy alloy , 2019, Journal of Power Sources.
[66] Shi-ze Yang,et al. Mechanochemical Synthesis of High Entropy Oxide Materials under Ambient Conditions: Dispersion of Catalysts via Entropy Maximization , 2019, ACS Materials Letters.
[67] R. Ritchie,et al. Mechanical properties of high-entropy alloys with emphasis on face-centered cubic alloys , 2019, Progress in Materials Science.
[68] Kun Fu,et al. Nanomanufacturing of graphene nanosheets through nano-hole opening and closing , 2019, Materials Today.
[69] Liangbing Hu,et al. Challenges and Opportunities for Solar Evaporation , 2019, Joule.
[70] K. Jacobsen,et al. High-Entropy Alloys as a Discovery Platform for Electrocatalysis , 2019, Joule.
[71] Boyang Liu,et al. Millisecond synthesis of CoS nanoparticles for highly efficient overall water splitting , 2019, Nano Research.
[72] R. N. Cavalcanti,et al. Microwave Processing: Current Background and Effects on the Physicochemical and Microbiological Aspects of Dairy Products. , 2019, Comprehensive reviews in food science and food safety.
[73] A. Ludwig,et al. Discovery of a Multinary Noble Metal–Free Oxygen Reduction Catalyst , 2018, Advanced Energy Materials.
[74] Guoliang Zhang,et al. High entropy alloy as a highly active and stable electrocatalyst for hydrogen evolution reaction , 2018, Electrochimica Acta.
[75] S. Skrabalak. Mashing up metals with carbothermal shock , 2018, Science.
[76] Steven D. Lacey,et al. Carbothermal shock synthesis of high-entropy-alloy nanoparticles , 2018, Science.
[77] Peter K. Liaw,et al. Science and technology in high-entropy alloys , 2018, Science China Materials.
[78] M. Hanfland,et al. First hexagonal close packed high-entropy alloy with outstanding stability under extreme conditions and electrocatalytic activity for methanol oxidation , 2017 .
[79] Steven D. Lacey,et al. Universal, In Situ Transformation of Bulky Compounds into Nanoscale Catalysts by High-Temperature Pulse. , 2017, Nano letters.
[80] L. Gu,et al. Atomic-layered Au clusters on α-MoC as catalysts for the low-temperature water-gas shift reaction , 2017, Science.
[81] Steven D. Lacey,et al. In Situ High Temperature Synthesis of Single-Component Metallic Nanoparticles , 2017, ACS central science.
[82] L. Zhigilei,et al. Atomistic modeling of nanoparticle generation in short pulse laser ablation of thin metal films in water. , 2017, Journal of colloid and interface science.
[83] S. Barcikowski,et al. Laser Synthesis and Processing of Colloids: Fundamentals and Applications. , 2017, Chemical reviews.
[84] R. Goodall,et al. Role of configurational entropy in body-centred cubic or face-centred cubic phase formation in high entropy alloys , 2016 .
[85] D. Miracle,et al. A critical review of high entropy alloys and related concepts , 2016 .
[86] D. Choudhuri,et al. A combinatorial assessment of AlxCrCuFeNi2 (0 < x < 1.5) complex concentrated alloys: Microstructure, microhardness, and magnetic properties , 2016 .
[87] Liangbing Hu,et al. Rapid, in Situ Synthesis of High Capacity Battery Anodes through High Temperature Radiation-Based Thermal Shock. , 2016, Nano letters.
[88] C. Tasan,et al. Metastable high-entropy dual-phase alloys overcome the strength–ductility trade-off , 2016, Nature.
[89] Wei Luo,et al. Reduced Graphene Oxide Films with Ultrahigh Conductivity as Li-Ion Battery Current Collectors. , 2016, Nano letters.
[90] N. Jones,et al. High-entropy alloys: a critical assessment of their founding principles and future prospects , 2016 .
[91] Adam L. Pilchak,et al. Development of a Refractory High Entropy Superalloy , 2016, Entropy.
[92] Aibing Yu,et al. Particle scale studies of heat transfer in a moving bed , 2015 .
[93] Jien-Wei Yeh,et al. Physical Metallurgy of High-Entropy Alloys , 2015 .
[94] S. Hoeppener,et al. Synthesis and Modification of Carbon Nanomaterials utilizing Microwave Heating , 2015, Advanced materials.
[95] D. Muraca,et al. Ag nanoparticles formed by femtosecond pulse laser ablation in water: self-assembled fractal structures , 2015, Journal of Nanoparticle Research.
[96] Brian Cantor,et al. Multicomponent and High Entropy Alloys , 2014, Entropy.
[97] Jiangwei Wang,et al. Formation of monatomic metallic glasses through ultrafast liquid quenching , 2014, Nature.
[98] J. Yeh,et al. High-Entropy Alloys: A Critical Review , 2014 .
[99] Rajender S. Varma,et al. Microwave-assisted chemistry: synthetic applications for rapid assembly of nanomaterials and organics. , 2014, Accounts of chemical research.
[100] G. Stucky,et al. Rapid microwave preparation and ab initio studies of the stability of the complex noble metal oxides La2BaPdO5 and La2BaPtO5. , 2014, Inorganic chemistry.
[101] Jien-Wei Yeh,et al. Alloy Design Strategies and Future Trends in High-Entropy Alloys , 2013 .
[102] J. Yeh,et al. Sluggish diffusion in Co-Cr-Fe-Mn-Ni high-entropy alloys , 2013 .
[103] D. Bogdał,et al. Synthesis of Polymer Nanocomposites Under Microwave Irradiation , 2011 .
[104] Jien-Wei Yeh,et al. Diffusion barrier properties of AlMoNbSiTaTiVZr high-entropy alloy layer between copper and silicon , 2008 .
[105] J. Yeh. Recent progress in high-entropy alloys , 2006 .
[106] T. Shun,et al. Nanostructured High‐Entropy Alloys with Multiple Principal Elements: Novel Alloy Design Concepts and Outcomes , 2004 .
[107] A. Breccia,et al. Chemistry by microwaves , 1999 .