Mesoporous multimetallic nanospheres with exposed highly entropic alloy sites
暂无分享,去创建一个
O. Cretu | J. Kikkawa | Y. Yamauchi | T. Liao | Hiroki Nara | Toru Asahi | M. Eguchi | A. S. Nugraha | Yunqing Kang | Koji Kimoto | Ziqi Sun | Hiroki Kawamoto
[1] Y. Yamauchi,et al. Porous Nanoarchitectures of Nonprecious Metal Borides: From Controlled Synthesis to Heterogeneous Catalyst Applications , 2022, ACS Catalysis.
[2] O. Ersen,et al. High-Entropy-Alloy Nanocrystal Based Macro- and Mesoporous Materials. , 2022, ACS nano.
[3] K. Ohara,et al. Continuous-Flow Reactor Synthesis for Homogeneous 1 nm-Sized Extremely Small High-Entropy Alloy Nanoparticles. , 2022, Journal of the American Chemical Society.
[4] Qinghua Zhang,et al. A General Synthetic Method for High-Entropy Alloy Subnanometer Ribbons. , 2022, Journal of the American Chemical Society.
[5] G. Gao,et al. Unraveling the electronegativity-dominated intermediate adsorption on high-entropy alloy electrocatalysts , 2022, Nature Communications.
[6] Bing-Mei Zhang,et al. Carbon-supported high-entropy Co-Zn-Cd-Cu-Mn sulfide nanoarrays promise high-performance overall water splitting , 2022, Nano Research.
[7] J. Miao,et al. High-entropy nanoparticles: Synthesis-structure-property relationships and data-driven discovery , 2022, Science.
[8] G. Hutchings,et al. Heterogeneous Trimetallic Nanoparticles as Catalysts , 2022, Chemical reviews.
[9] Shengwei Liu,et al. Two-Dimensional High-Entropy Metal Phosphorus Trichalcogenides for Enhanced Hydrogen Evolution Reaction. , 2022, ACS nano.
[10] Zhaoping Lu,et al. Design of Hierarchical Porosity Via Manipulating Chemical and Microstructural Complexities in High‐Entropy Alloys for Efficient Water Electrolysis , 2022, Advanced science.
[11] M. Koyama,et al. Noble-Metal High-Entropy-Alloy Nanoparticles: Atomic-Level Insight into the Electronic Structure. , 2022, Journal of the American Chemical Society.
[12] Danyan Feng,et al. CoNiCuMgZn high entropy alloy nanoparticles embedded onto graphene sheets via anchoring and alloying strategy as efficient electrocatalysts for hydrogen evolution reaction , 2022, Chemical Engineering Journal.
[13] N. Zhao,et al. A freestanding nanoporous NiCoFeMoMn high-entropy alloy as an efficient electrocatalyst for rapid water splitting , 2022, Chemical Engineering Journal.
[14] Q. Yan,et al. High‐entropy alloys and compounds for electrocatalytic energy conversion applications , 2021, SusMat.
[15] Bolong Huang,et al. Subnanometer high-entropy alloy nanowires enable remarkable hydrogen oxidation catalysis , 2021, Nature Communications.
[16] 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.
[17] Xueping Qin,et al. The role of ruthenium in improving the kinetics of hydrogen oxidation and evolution reactions of platinum , 2021, Nature Catalysis.
[18] Lai‐Chang Zhang,et al. A Self‐Supported High‐Entropy Metallic Glass with a Nanosponge Architecture for Efficient Hydrogen Evolution under Alkaline and Acidic Conditions , 2021, Advanced Functional Materials.
[19] S. Dai,et al. High-entropy materials for catalysis: A new frontier , 2021, Science Advances.
[20] Qinghua Zhang,et al. Evoking ordered vacancies in metallic nanostructures toward a vacated Barlow packing for high-performance hydrogen evolution , 2021, Science Advances.
[21] A. Kuhn,et al. Nanoengineered chiral Pt-Ir alloys for high-performance enantioselective electrosynthesis , 2021, Nature Communications.
[22] S. Noda,et al. Strategies and Perspectives to Catch the Missing Pieces in Energy‐Efficient Hydrogen Evolution Reaction in Alkaline Media , 2021, Angewandte Chemie.
[23] Qinghua Zhang,et al. Nanoporous Surface High‐Entropy Alloys as Highly Efficient Multisite Electrocatalysts for Nonacidic Hydrogen Evolution Reaction , 2020, Advanced Functional Materials.
[24] Heng Wang,et al. Self- supported high-entropy alloy electrocatalyst for highly efficient H2 evolution in acid condition , 2020 .
[25] Shuangquan Zang,et al. Dynamic Core-Shell and Alloy Structures of Multimetallic Nanomaterials and Their Catalytic Synergies. , 2020, Accounts of chemical research.
[26] M. Zachariah,et al. In Situ Oxidation Studies of High-Entropy Alloy Nanoparticles. , 2020, ACS nano.
[27] M. Koper,et al. The role of adsorbed hydroxide in hydrogen evolution reaction kinetics on modified platinum , 2020, Nature Energy.
[28] Liangbing Wang,et al. High-Entropy Alloys as a Platform for Catalysis: Progress, Challenges, and Opportunities , 2020 .
[29] Lei Wang,et al. Fast site-to-site electron transfer of high-entropy alloy nanocatalyst driving redox electrocatalysis , 2020, Nature Communications.
[30] Y. Kubota,et al. Platinum-Group-Metal High-Entropy-Alloy Nanoparticles. , 2020, Journal of the American Chemical Society.
[31] Jun Lu,et al. Synthesis of high-entropy alloy nanoparticles on supports by the fast moving bed pyrolysis , 2020, Nature Communications.
[32] Xueping Qin,et al. The pH-Dependent Hydrogen and Water Binding Energies on Platinum Surfaces as Directly Probed through Surface-Enhanced Infrared Absorption Spectroscopy. , 2020, Journal of the American Chemical Society.
[33] Lai‐Chang Zhang,et al. A Novel Multinary Intermetallic as an Active Electrocatalyst for Hydrogen Evolution , 2020, Advanced materials.
[34] Zhimin Xue,et al. Eutectic synthesis of high entropy metal phosphide for electrocatalytic water splitting. , 2020, ChemSusChem.
[35] L. Lee,et al. Recent Advances in Electrocatalytic Hydrogen Evolution Using Nanoparticles. , 2019, Chemical reviews.
[36] Yanjun Jiang,et al. Mesoporous Core–Shell Nanostructures Bridging Metal and Biocatalyst for Highly Efficient Cascade Reactions , 2020 .
[37] Zuhuang Chen,et al. Nanoporous Al-Ni-Co-Ir-Mo High-Entropy Alloy for Record-High Water Splitting Activity in Acidic Environments. , 2019, Small.
[38] L. Gu,et al. Tuning element distribution, structure and properties by composition in high-entropy alloys , 2019, Nature.
[39] Dierk Raabe,et al. High-entropy alloys , 2019, Nature Reviews Materials.
[40] Shi-ze Yang,et al. Entropy‐Maximized Synthesis of Multimetallic Nanoparticle Catalysts via a Ultrasonication‐Assisted Wet Chemistry Method under Ambient Conditions , 2019, Advanced Materials Interfaces.
[41] S. Wabaidur,et al. Mesoporous PtCu Alloy Nanoparticles with Tunable Compositions and Particles Sizes Using Diblock Copolymer Micelle Templates. , 2018, Chemistry.
[42] Cuiling Li,et al. Trimetallic Mesoporous AuCuNi Electrocatalysts with Controlled Compositions Using Block Copolymer Micelles as Templates , 2018, Small Methods.
[43] Dongdong Xu,et al. Multimetallic Hollow Mesoporous Nanospheres with Synergistically Structural and Compositional Effects for Highly Efficient Ethanol Electrooxidation , 2018, ACS central science.
[44] Y. Jiao,et al. The Hydrogen Evolution Reaction in Alkaline Solution: From Theory, Single Crystal Models, to Practical Electrocatalysts. , 2018, Angewandte Chemie.
[45] Guoliang Zhang,et al. High entropy alloy as a highly active and stable electrocatalyst for hydrogen evolution reaction , 2018, Electrochimica Acta.
[46] Cuiling Li,et al. Mesoporous metallic rhodium nanoparticles , 2017, Nature Communications.
[47] Cuiling Li,et al. Nanoarchitectures for Mesoporous Metals , 2016, Advanced materials.
[48] Tatsuya Shinagawa,et al. Insight on Tafel slopes from a microkinetic analysis of aqueous electrocatalysis for energy conversion , 2015, Scientific Reports.
[49] Cuiling Li,et al. Multimetallic Mesoporous Spheres Through Surfactant‐Directed Synthesis , 2015, Advanced science.
[50] Shigang Sun,et al. Electrochemical synthesis of tetrahexahedral rhodium nanocrystals with extraordinarily high surface energy and high electrocatalytic activity. , 2014, Angewandte Chemie.
[51] Y. Yamauchi,et al. All-metal mesoporous nanocolloids: solution-phase synthesis of core-shell Pd@Pt nanoparticles with a designed concave surface. , 2013, Angewandte Chemie.
[52] Y. Yamauchi,et al. Metallic nanocages: synthesis of bimetallic Pt-Pd hollow nanoparticles with dendritic shells by selective chemical etching. , 2013, Journal of the American Chemical Society.
[53] Y. Yamauchi,et al. Autoprogrammed synthesis of triple-layered Au@Pd@Pt core-shell nanoparticles consisting of a Au@Pd bimetallic core and nanoporous Pt shell. , 2010, Journal of the American Chemical Society.
[54] S. Grimme,et al. A consistent and accurate ab initio parametrization of density functional dispersion correction (DFT-D) for the 94 elements H-Pu. , 2010, The Journal of chemical physics.
[55] Stefano de Gironcoli,et al. QUANTUM ESPRESSO: a modular and open-source software project for quantum simulations of materials , 2009, Journal of physics. Condensed matter : an Institute of Physics journal.
[56] Zhi-You Zhou,et al. Platinum Metal Catalysts of High-Index Surfaces: From Single-Crystal Planes to Electrochemically Shape-Controlled Nanoparticles , 2008 .
[57] R. Johnston,et al. Nanoalloys: from theory to applications of alloy clusters and nanoparticles. , 2008, Chemical reviews.
[58] Lei Wang,et al. The self-complementary effect through strong orbital coupling in ultrathin high-entropy alloy nanowires boosting pH-universal multifunctional electrocatalysis , 2022, Applied Catalysis B: Environmental.
[59] Jianqing Jiang,et al. Efficient FeCoNiCuPd thin-film electrocatalyst for alkaline oxygen and hydrogen evolution reactions , 2022, Applied Catalysis B: Environmental.
[60] G. Wang,et al. Advanced catalyst for hydrogen evolution reaction by dealloying Al-based nanocrystalline alloys , 2021 .