TiB2 thin film enabled efficient NH3 electrosynthesis at ambient conditions
暂无分享,去创建一个
Abdullah M. Asiri | A. Asiri | Tingshuai Li | Jie Liang | Guang Chen | Xuping Sun | Qi Wu | Qian Liu | Yonglan Luo | D. Ma | Shaoxiong Li | Yuanyuan Wang | Tong Xu | Siran Xu
[1] Tingshuai Li,et al. Commercial indium-tin oxide glass: A catalyst electrode for efficient N2 reduction at ambient conditions , 2021, Chinese Journal of Catalysis.
[2] Abdullah M. Asiri,et al. Magnetron sputtering enabled sustainable synthesis of nanomaterials for energy electrocatalysis , 2021 .
[3] Yu Jia,et al. Theoretical screening of the transition metal heteronuclear dimer anchored graphdiyne for electrocatalytic nitrogen reduction , 2021, Journal of Energy Chemistry.
[4] Abdullah M. Asiri,et al. A magnetron sputtered Mo3Si thin film: an efficient electrocatalyst for N2reduction under ambient conditions , 2021 .
[5] Ya-li Guo,et al. ZrB2 as an earth-abundant metal diboride catalyst for electroreduction of dinitrogen to ammonia. , 2020, Chemical Communications.
[6] Yongsong Luo,et al. Enabling electrochemical conversion of N2 to NH3 under ambient conditions by a CoP3 nanoneedle array , 2020 .
[7] Abdullah M. Asiri,et al. Iron-group electrocatalysts for ambient nitrogen reduction reaction in aqueous media , 2020, Nano Research.
[8] Yongsong Luo,et al. Electrocatalytic N2 reduction to NH3 with high Faradaic efficiency enabled by vanadium phosphide nanoparticle on V foil , 2020, Nano Research.
[9] Cheng Tang,et al. In Situ Fragmented Bismuth Nanoparticles for Electrocatalytic Nitrogen Reduction , 2020, Advanced Energy Materials.
[10] Siyu Lu,et al. Greatly Enhanced Electrocatalytic N 2 Reduction over V 2 O 3 /C by P Doping , 2020 .
[11] Abdullah M. Asiri,et al. Cu3P nanoparticle-reduced graphene oxide hybrid: an efficient electrocatalyst to realize N2-to-NH3 conversion under ambient conditions. , 2020, Chemical communications.
[12] Abdullah M. Asiri,et al. Identifying the Origin of Ti3+ Activity toward Enhanced Electrocatalytic N2 Reduction over TiO2 Nanoparticles Modulated by Mixed‐Valent Copper , 2020, Advanced materials.
[13] Ye Tian,et al. Amorphization activated FeB2 porous nanosheets enable efficient electrocatalytic N2 fixation , 2020, Journal of Energy Chemistry.
[14] Yuan-yuan Jiang,et al. Designing transition-metal-boride-based electrocatalysts for applications in electrochemical water splitting. , 2020, Nanoscale.
[15] Guang Chen,et al. Aqueous electrocatalytic N2 reduction for ambient NH3 synthesis: recent advances in catalyst development and performance improvement , 2020 .
[16] Baozhan Zheng,et al. Unusual electrochemical N2 reduction activity in an earth-abundant iron catalyst via phosphorous modulation. , 2019, Chemical communications.
[17] Xuping Sun,et al. Greatly Improving Electrochemical N2 Reduction over TiO2 Nanoparticle by Fe Doping. , 2019, Angewandte Chemie.
[18] Xuping Sun,et al. Greatly Enhanced Electrocatalytic N 2 Reduction on TiO 2 via V Doping , 2019, Small Methods.
[19] A. Miotello,et al. Metal Boride‐Based Catalysts for Electrochemical Water‐Splitting: A Review , 2019, Advanced Functional Materials.
[20] Xuping Sun,et al. Improving the electrocatalytic N2 reduction activity of Pd nanoparticles through surface modification , 2019, Journal of Materials Chemistry A.
[21] S. Pennycook,et al. Copper Single Atoms Anchored in Porous Nitrogen-Doped Carbon as Efficient pH-Universal Catalysts for the Nitrogen Reduction Reaction , 2019, ACS Catalysis.
[22] M. Oschatz,et al. Enhanced electrocatalytic N2 reduction via partial anion substitution in titanium oxide-carbon composites. , 2019, Angewandte Chemie.
[23] Tao Jiang,et al. Self-power electroreduction of N2 into NH3 by 3D printed triboelectric nanogenerators , 2019, Materials Today.
[24] Tingshuai Li,et al. Electrospun TiC/C nanofibers for ambient electrocatalytic N2 reduction , 2019, Journal of Materials Chemistry A.
[25] Ke Chu,et al. Electronically Coupled SnO2 Quantum Dots and Graphene for Efficient Nitrogen Reduction Reaction. , 2019, ACS applied materials & interfaces.
[26] Benhe Zhong,et al. TiS2 nanosheets for efficient electrocatalytic N2 fixation to NH3 under ambient conditions , 2019, Inorganic Chemistry Frontiers.
[27] Yu Jia,et al. Computational Evaluation of Electrocatalytic Nitrogen Reduction on TM Single-, Double-, and Triple-Atom Catalysts (TM = Mn, Fe, Co, Ni) Based on Graphdiyne Monolayers , 2019, The Journal of Physical Chemistry C.
[28] Xin-bo Zhang,et al. Generating Defect-Rich Bismuth for Enhancing the Rate of Nitrogen Electroreduction to Ammonia. , 2019, Angewandte Chemie.
[29] Jinsong Hu,et al. Identification of FeN4 as an Efficient Active Site for Electrochemical N2 Reduction , 2019, ACS Catalysis.
[30] Jun Luo,et al. Nitrogen-coordinated single Fe sites for efficient electrocatalytic N2 fixation in neutral media , 2019, Nano Energy.
[31] Gengfeng Zheng,et al. Doping strain induced bi-Ti3+ pairs for efficient N2 activation and electrocatalytic fixation , 2019, Nature Communications.
[32] Zhong Jin,et al. Review on photocatalytic and electrocatalytic artificial nitrogen fixation for ammonia synthesis at mild conditions: Advances, challenges and perspectives , 2019, Nano Research.
[33] Abdullah M. Asiri,et al. A perovskite La2Ti2O7 nanosheet as an efficient electrocatalyst for artificial N2 fixation to NH3 in acidic media. , 2019, Chemical communications.
[34] M. Jaroniec,et al. Building Up a Picture of the Electrocatalytic Nitrogen Reduction Activity of Transition Metal Single-Atom Catalysts. , 2019, Journal of the American Chemical Society.
[35] W. Cai,et al. Plasma-etching enhanced titanium oxynitride active phase with high oxygen content for ambient electrosynthesis of ammonia , 2019, Electrochemistry Communications.
[36] Ye Tian,et al. Efficient electrocatalytic N2 reduction on CoO quantum dots , 2019, Journal of Materials Chemistry A.
[37] Huijun Zhao,et al. Dramatically Enhanced Ambient Ammonia Electrosynthesis Performance by In‐Operando Created Li–S Interactions on MoS2 Electrocatalyst , 2019, Advanced Energy Materials.
[38] Xuping Sun,et al. Insights into defective TiO2 in electrocatalytic N2 reduction: combining theoretical and experimental studies. , 2019, Nanoscale.
[39] Abdullah M. Asiri,et al. High-Performance N2-to-NH3 Conversion Electrocatalyzed by Mo2C Nanorod , 2018, ACS central science.
[40] H. Xin,et al. Atomically Dispersed Molybdenum Catalysts for Efficient Ambient Nitrogen Fixation. , 2019, Angewandte Chemie.
[41] Gengfeng Zheng,et al. NbO 2 Electrocatalyst Toward 32% Faradaic Efficiency for N 2 Fixation , 2018, Small Methods.
[42] Xiao-dong Guo,et al. Boron-Doped TiO2 for Efficient Electrocatalytic N2 Fixation to NH3 at Ambient Conditions , 2018, ACS Sustainable Chemistry & Engineering.
[43] Abdullah M. Asiri,et al. Ag nanosheets for efficient electrocatalytic N2 fixation to NH3 under ambient conditions. , 2018, Chemical communications.
[44] Y. Qian,et al. Conductive and Polar Titanium Boride as a Sulfur Host for Advanced Lithium–Sulfur Batteries , 2018, Chemistry of Materials.
[45] D. Macfarlane,et al. Energy-Efficient Nitrogen Reduction to Ammonia at Low Overpotential in Aqueous Electrolyte under Ambient Conditions. , 2018, ChemSusChem.
[46] B. Tang,et al. High-performance artificial nitrogen fixation at ambient conditions using a metal-free electrocatalyst , 2018, Nature Communications.
[47] Baozhan Zheng,et al. Enabling Effective Electrocatalytic N2 Conversion to NH3 by the TiO2 Nanosheets Array under Ambient Conditions. , 2018, ACS applied materials & interfaces.
[48] Gengfeng Zheng,et al. Boron-Doped Graphene for Electrocatalytic N2 Reduction , 2018, Joule.
[49] Sajanlal R. Panikkanvalappil,et al. Enhancing the rate of electrochemical nitrogen reduction reaction for ammonia synthesis under ambient conditions using hollow gold nanocages , 2018, Nano Energy.
[50] Yu Ding,et al. An Amorphous Noble-Metal-Free Electrocatalyst that Enables Nitrogen Fixation under Ambient Conditions. , 2018, Angewandte Chemie.
[51] H. Xin,et al. Ambient ammonia synthesis via palladium-catalyzed electrohydrogenation of dinitrogen at low overpotential , 2018, Nature Communications.
[52] A. Selloni,et al. Excess electrons in reduced rutile and anatase TiO 2 , 2018 .
[53] Shi-Zhang Qiao,et al. Rational design of electrocatalysts and photo(electro)catalysts for nitrogen reduction to ammonia (NH3) under ambient conditions , 2018 .
[54] Q. Jiang,et al. Amorphizing of Au Nanoparticles by CeOx–RGO Hybrid Support towards Highly Efficient Electrocatalyst for N2 Reduction under Ambient Conditions , 2017, Advanced materials.
[55] Michael Stoukides,et al. Progress in the Electrochemical Synthesis of Ammonia , 2017 .
[56] R. Hamers,et al. Photo-illuminated diamond as a solid-state source of solvated electrons in water for nitrogen reduction. , 2013, Nature materials.
[57] D. Portehault,et al. Nanoscaled metal borides and phosphides: recent developments and perspectives. , 2013, Chemical reviews.
[58] Xueping Gao,et al. Multi-electron reaction materials for high energy density batteries , 2010 .
[59] M.E.H. Maia da Costa,et al. Nitrogen incorporation into titanium diboride films deposited by dc magnetron sputtering: Structural modifications , 2009 .
[60] J. Nørskov,et al. Ammonia for hydrogen storage: challenges and opportunities , 2008 .
[61] D. Shu,et al. First-principles study of TiB2(0001) surfaces , 2006, Journal of physics. Condensed matter : an Institute of Physics journal.
[62] J. Nørskov,et al. Ammonia Synthesis from First-Principles Calculations , 2005, Science.
[63] Robert Schlögl,et al. Catalytic synthesis of ammonia-a "never-ending story"? , 2003, Angewandte Chemie.
[64] J. Nørskov,et al. Nitrogen Adsorption and Dissociation on Fe(111) , 1999 .
[65] G. Ertl,et al. A vibrational spectroscopy study on the interaction of N2 with clean and K-promoted Fe(111) surfaces: π-bonded dinitrogen as precursor for dissociation , 1985 .
[66] W. Ho,et al. A vibrational frequency and intensity analysis of the bonding structure of N2 on W(100) , 1980 .
[67] D. King,et al. Chemisorption of nitrogen on platinum {111}: Reflection-absorption infrared spectroscopy , 1977 .
[68] G. Watt,et al. Spectrophotometric Method for Determination of Hydrazine , 1952 .
[69] Tingting Wu,et al. Electrochemical synthesis of ammonia: Progress and challenges , 2021 .
[70] Xin Wang,et al. An Efficient and Earth‐Abundant Oxygen‐Evolving Electrocatalyst Based on Amorphous Metal Borides , 2018 .
[71] G. N. Burland,et al. Molecular and dissociative chemisorption of N2 on Ni(110) , 1979 .