In situ grown Fe3O4 particle on stainless steel: A highly efficient electrocatalyst for nitrate reduction to ammonia
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Tingshuai Li | Luchao Yue | Jie Liang | Shuyan Gao | Xuping Sun | A. Alshehri | Na Li | Qian Liu | Longcheng Zhang | Lisi Xie | Yonglan Luo | Q. Kong | Yuchun Ren | Yang Liu | Xiaoyan Fan | B. Tang
[1] Abdullah M. Asiri,et al. High-efficiency nitrate electroreduction to ammonia on electrodeposited cobalt-phosphorus alloy film. , 2021, Chemical communications.
[2] C. Wen,et al. Electrocatalytic Reduction of NO3- to Ultrapure Ammonia on {200} Facet Dominant Cu Nanodendrites with High Conversion Faradaic Efficiency. , 2021, The journal of physical chemistry letters.
[3] Abdullah M. Asiri,et al. Ni2P nanosheet array for high-efficiency electrohydrogenation of nitrite to ammonia at ambient conditions. , 2021, Journal of colloid and interface science.
[4] Tingshuai Li,et al. Ambient ammonia production via electrocatalytic nitrite reduction catalyzed by a CoP nanoarray , 2021, Nano Research.
[5] Yafei Li,et al. Evolution of dielectric loss-dominated electromagnetic patterns in magnetic absorbers for enhanced microwave absorption performances , 2021, Nano Research.
[6] Haotian Wang,et al. Electrochemical ammonia synthesis via nitrate reduction on Fe single atom catalyst , 2021, Nature Communications.
[7] Changhong Wang,et al. Nitrate electroreduction: mechanism insight, in situ characterization, performance evaluation, and challenges. , 2021, Chemical Society reviews.
[8] Panpan Li,et al. A single-site iron catalyst with preoccupied active centers that achieves selective ammonia electrosynthesis from nitrate , 2021, Energy & Environmental Science.
[9] Y. Chang,et al. Enhanced N2 affinity of 1T-MoS2 with a unique pseudo-six-membered ring consisting of N–Li–S–Mo–S–Mo for high ambient ammonia electrosynthesis performance , 2021 .
[10] Yuzheng Guo,et al. Theoretical Insights into the Mechanism of Selective Nitrate‐to‐Ammonia Electroreduction on Single‐Atom Catalysts , 2020, Advanced Functional Materials.
[11] Di-Yan Wang,et al. Exploration and Investigation of Periodic Elements for Electrocatalytic Nitrogen Reduction. , 2020, Small.
[12] Abdullah M. Asiri,et al. Iron-group electrocatalysts for ambient nitrogen reduction reaction in aqueous media , 2020, Nano Research.
[13] Dehui Deng,et al. Direct Electrochemical Ammonia Synthesis from Nitric Oxide , 2020, Angewandte Chemie.
[14] Woojin Lee,et al. Advances in the catalytic reduction of nitrate by metallic catalysts for high efficiency and N2 selectivity: A review , 2020 .
[15] Y. Chang,et al. Photoactive Earth-Abundant Iron Pyrite Catalysts for Electrocatalytic Nitrogen Reduction Reaction. , 2019, Small.
[16] Jianmeng Chen,et al. Immobilized hybrids between nitrogen-doped carbon and stainless steel derived Fe3O4 used as a heterogeneous activator of persulfate during the treatment of aqueous carbamazepine , 2019, Chemical Engineering Journal.
[17] T. Zhu,et al. Highly active and durable carbon electrocatalyst for nitrate reduction reaction. , 2019, Water research.
[18] T. Ma,et al. 2D nanoplate assembled nitrogen doped hollow carbon sphere decorated with Fe3O4 as an efficient electrocatalyst for oxygen reduction reaction and Zn-air batteries , 2019, Nano Research.
[19] Vei Wang,et al. VASPKIT: A user-friendly interface facilitating high-throughput computing and analysis using VASP code , 2019, Comput. Phys. Commun..
[20] Hans W. Paerl,et al. Nutrients, eutrophication and harmful algal blooms along the freshwater to marine continuum , 2019, WIREs Water.
[21] S. Niu,et al. Global soil acidification impacts on belowground processes , 2019, Environmental Research Letters.
[22] Douglas R. MacFarlane,et al. Challenges and prospects in the catalysis of electroreduction of nitrogen to ammonia , 2019, Nature Catalysis.
[23] C. Casenave,et al. Modelling eutrophication in lake ecosystems: A review. , 2019, The Science of the total environment.
[24] F. Nan,et al. Treatment of real aquaculture wastewater from a fishery utilizing phytoremediation with microalgae , 2018, Journal of Chemical Technology & Biotechnology.
[25] Izzat Iqbal Cheema,et al. Operating envelope of Haber–Bosch process design for power-to-ammonia , 2018, RSC advances.
[26] Yang Li,et al. Electrochemical removal of nitrate in industrial wastewater , 2018, Frontiers of Environmental Science & Engineering.
[27] I. Solomon,et al. Effect of deformation-induced phase transformation on AISI 316 stainless steel corrosion resistance , 2017 .
[28] T. Yue,et al. Adsorption of Cd(II) and Pb(II) by in situ oxidized Fe3O4 membrane grafted on 316L porous stainless steel filter tube and its potential application for drinking water treatment. , 2017, Journal of environmental management.
[29] Gordana Dukovic,et al. Light-driven dinitrogen reduction catalyzed by a CdS:nitrogenase MoFe protein biohybrid , 2016, Science.
[30] Tsungwu Lin,et al. High Energy Density Asymmetric Supercapacitor Based on NiOOH/Ni3S2/3D Graphene and Fe3O4/Graphene Composite Electrodes , 2014, Scientific Reports.
[31] Jun Yu Li,et al. Radical induced degradation of acetaminophen with Fe3O4 magnetic nanoparticles as heterogeneous activator of peroxymonosulfate. , 2014, Journal of hazardous materials.
[32] Robert Schlögl,et al. The Haber-Bosch process revisited: on the real structure and stability of "ammonia iron" under working conditions. , 2013, Angewandte Chemie.
[33] Jun Yan,et al. Supercapacitors based on graphene-supported iron nanosheets as negative electrode materials. , 2013, ACS nano.
[34] S. Fujimoto,et al. XPS characterization of passive films formed on Type 304 stainless steel in humid atmosphere , 2012 .
[35] M. Koper,et al. Nitrogen cycle electrocatalysis. , 2009, Chemical reviews.
[36] B. J. Evans. Experimental studies of the electrical conductivity and phase transition in Fe3O4 , 2008 .
[37] J. Nørskov,et al. Ammonia for hydrogen storage: challenges and opportunities , 2008 .
[38] J. Galloway,et al. An Earth-system perspective of the global nitrogen cycle , 2008, Nature.
[39] G. Ceder,et al. Towards more accurate First Principles prediction of redox potentials in transition-metal compounds with LDA+U , 2004, cond-mat/0406382.
[40] Stefano de Gironcoli,et al. Linear response approach to the calculation of the effective interaction parameters in the LDA + U method , 2004, cond-mat/0405160.
[41] Robert Schlögl,et al. Catalytic synthesis of ammonia-a "never-ending story"? , 2003, Angewandte Chemie.
[42] G. Kresse,et al. From ultrasoft pseudopotentials to the projector augmented-wave method , 1999 .
[43] R. Eady. Structure−Function Relationships of Alternative Nitrogenases , 1996 .
[44] Burke,et al. Generalized Gradient Approximation Made Simple. , 1996, Physical review letters.
[45] Hafner,et al. Ab initio molecular-dynamics simulation of the liquid-metal-amorphous-semiconductor transition in germanium. , 1994, Physical review. B, Condensed matter.
[46] H. Monkhorst,et al. SPECIAL POINTS FOR BRILLOUIN-ZONE INTEGRATIONS , 1976 .
[47] W. David,et al. Ammonia as a Power , 1891, Hall's journal of health.
[48] Dajana Gašo-Sokač,et al. Adsorptive removal of nitrate from wastewater using modified lignocellulosic waste material , 2019, Journal of Molecular Liquids.