MnO2 nanoarray with oxygen vacancies: An efficient catalyst for NO electroreduction to NH3 at ambient conditions
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Tingshuai Li | Jie Liang | Shuyan Gao | Xuping Sun | A. Alshehri | Qi Wu | Na Li | Qian Liu | Zerong Li | Yonglan Luo | Yuchun Ren | D. Ma | Yang Liu | Ziyu Ma | Siran Xu | B. Tang
[1] Xuping Sun. High-Performance Electrochemical NO Reduction into NH3 by MoS2 Nanosheet. , 2021, Angewandte Chemie.
[2] Changhong Wang,et al. Promoting nitric oxide electroreduction to ammonia over electron-rich Cu modulated by Ru doping , 2021, Science China Chemistry.
[3] Pengjian Zuo,et al. Modulating CoFe2O4 nanocube with oxygen vacancy and carbon wrapper towards enhanced electrocatalytic nitrogen reduction to ammonia , 2021 .
[4] Abdullah M. Asiri,et al. Recent Advances in Nonprecious Metal Oxide Electrocatalysts and Photocatalysts for N 2 Reduction Reaction under Ambient Condition , 2021, Small Science.
[5] Abdullah M. Asiri,et al. TiB2 thin film enabled efficient NH3 electrosynthesis at ambient conditions , 2021 .
[6] Yu Jia,et al. Theoretical screening of the transition metal heteronuclear dimer anchored graphdiyne for electrocatalytic nitrogen reduction , 2021, Journal of Energy Chemistry.
[7] Yu Jia,et al. Electrocatalytic nitrogen reduction on the transition-metal dimer anchored N-doped graphene: performance prediction and synergetic effect. , 2021, Physical chemistry chemical physics : PCCP.
[8] Yongyong Zhang,et al. Degradation of gaseous unsymmetrical dimethylhydrazine by vacuum ultraviolet coupled with MnO2 , 2021 .
[9] Z. Yin,et al. MnO2‐Based Materials for Environmental Applications , 2021, Advanced materials.
[10] Libo Wu,et al. Air pollution reduction and climate co-benefits in China’s industries , 2021, Nature Sustainability.
[11] Qinghua Zhang,et al. Silver single-atom catalyst for efficient electrochemical CO2 reduction synthesized from thermal transformation and surface reconstruction. , 2020, Angewandte Chemie.
[12] Jun Luo,et al. Ambient electrosynthesis of ammonia with efficient denitration , 2020 .
[13] Haeun Shin,et al. The impact of nitrogen oxides on electrochemical carbon dioxide reduction , 2020, Nature Communications.
[14] Pengjian Zuo,et al. Novel confinement of Mn3O4 nanoparticles on two-dimensional carbide enabling high-performance electrochemical synthesis of ammonia under ambient conditions , 2020 .
[15] Yadong Li,et al. Challenges and opportunities for manganese oxides in low-temperature selective catalytic reduction of NOx with NH3: H2O resistance ability , 2020 .
[16] D. Macfarlane,et al. Electroreduction of Nitrates, Nitrites, and Gaseous Nitrogen Oxides: A Potential Source of Ammonia in Dinitrogen Reduction Studies , 2020, ACS Energy Letters.
[17] Chuan Wang,et al. Synergistically Coupling Black Phosphorus Quantum Dots with MnO2 Nanosheets for Efficient Electrochemical Nitrogen Reduction Under Ambient Conditions. , 2020, Small.
[18] Dehui Deng,et al. Direct Electrochemical Ammonia Synthesis from Nitric Oxide. , 2020, Angewandte Chemie.
[19] D. Jacob,et al. A two-pollutant strategy for improving ozone and particulate air quality in China , 2019, Nature Geoscience.
[20] Liyi Shi,et al. Selective Catalytic Reduction of NOx with NH3 by Using Novel Catalysts: State of the Art and Future Prospects. , 2019, Chemical reviews.
[21] 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.
[22] G. Qian,et al. Production of an effective catalyst with increased oxygen vacancies from manganese slag for selective catalytic reduction of nitric oxide. , 2019, Journal of environmental management.
[23] Cheng Zhang,et al. A novel highly active and sulfur resistant catalyst from Mn-Fe-Al layered double hydroxide for low temperature NH3-SCR , 2019, Catalysis Today.
[24] Hongyu Chen,et al. Boosting electrocatalytic N2 reduction by MnO2 with oxygen vacancies. , 2019, Chemical communications.
[25] Xiaojiang Li,et al. Synthesis of a Novel NiMnTi Mixed Metal Oxides from LDH Precursor and Its Catalytic Application for Selective Catalytic Reduction of NOx with NH3 , 2018, Catalysis Letters.
[26] Q. Hao,et al. Insights into the surface-defect dependence of molecular oxygen activation over birnessite-type MnO2 , 2018, Applied Catalysis B: Environmental.
[27] Mingli Fu,et al. Evolution of oxygen vacancies in MnOx-CeO2 mixed oxides for soot oxidation , 2018 .
[28] E. Culea,et al. Structural and electrochemical properties of recycled active electrodes from spent lead acid battery and modified with different manganese dioxide contents , 2018 .
[29] Jinsheng Zhao,et al. Precisely controlled synthesis of α-/β-MnO2 materials by adding Zn(acac)2 as a phase transformation-inducing agent. , 2018, Chemical communications.
[30] Dawei Wang,et al. Snowflake-like core-shell α-MnO2@δ-MnO2 for high performance asymmetric supercapacitor , 2017 .
[31] Wenjun Jiang,et al. Surface oxygen vacancy induced α-MnO2 nanofiber for highly efficient ozone elimination , 2017 .
[32] Zhonghua Zhu,et al. Ultrathin Iron‐Cobalt Oxide Nanosheets with Abundant Oxygen Vacancies for the Oxygen Evolution Reaction , 2017, Advanced materials.
[33] L. Chai,et al. The electrochemical selective reduction of NO using CoSe2@CNTs hybrid , 2017, Environmental Science and Pollution Research.
[34] Fanyan Zeng,et al. Facile construction of Mn3O4-MnO2 hetero-nanorods/graphene nanocomposite for highly sensitive electrochemical detection of hydrogen peroxide , 2016 .
[35] K. Berhane,et al. Traffic-related air pollution and alveolar nitric oxide in southern California children , 2016, European Respiratory Journal.
[36] C. Peden,et al. Recent advances in automotive catalysis for NOx emission control by small-pore microporous materials. , 2015, Chemical Society reviews.
[37] L. Wan,et al. Insight into the Effect of Oxygen Vacancy Concentration on the Catalytic Performance of MnO2 , 2015 .
[38] Rees B Rankin,et al. Elucidation of Pathways for NO Electroreduction on Pt(111) from First Principles. , 2015, Angewandte Chemie.
[39] Hui Huang,et al. Structure-property relationship of bifunctional MnO2 nanostructures: highly efficient, ultra-stable electrochemical water oxidation and oxygen reduction reaction catalysts identified in alkaline media. , 2014, Journal of the American Chemical Society.
[40] Jiming Hao,et al. Mineral dust and NOx promote the conversion of SO2 to sulfate in heavy pollution days , 2014, Scientific Reports.
[41] Y. Crespo,et al. Electronic and magnetic properties of α-MnO 2 from ab initio calculations , 2013 .
[42] R. Hamers,et al. Photo-illuminated diamond as a solid-state source of solvated electrons in water for nitrogen reduction. , 2013, Nature materials.
[43] Jun Chen,et al. Enhancing electrocatalytic oxygen reduction on MnO(2) with vacancies. , 2013, Angewandte Chemie.
[44] Kebin He,et al. Climate and environmental effects of electric vehicles versus compressed natural gas vehicles in China: a life-cycle analysis at provincial level. , 2013, Environmental science & technology.
[45] Liyi Shi,et al. In situ synthesis of 3D flower-like NiMnFe mixed oxides as monolith catalysts for selective catalytic reduction of NO with NH3. , 2012, Chemical communications.
[46] Yi Cui,et al. Enhancing the supercapacitor performance of graphene/MnO2 nanostructured electrodes by conductive wrapping. , 2011, Nano letters.
[47] Bingqing Hu,et al. Surface structure sensitivity of manganese oxides for low-temperature selective catalytic reduction of NO with NH3 , 2011 .
[48] T. Farias,et al. A study of copper-exchanged mordenite natural and ZSM-5 zeolites as SCR–NOx catalysts for diesel road vehicles: Simulation by neural networks approach , 2009 .
[49] J. Figueiredo,et al. Catalytic oxidation of ethyl acetate over a cesium modified cryptomelane catalyst , 2009 .
[50] M. Koper,et al. Nitrogen cycle electrocatalysis. , 2009, Chemical reviews.
[51] Wang Xing-yi,et al. Catalytic combustion of chlorobenzene over MnOx–CeO2 mixed oxide catalysts , 2009 .
[52] Peter G Bruce,et al. Alpha-MnO2 nanowires: a catalyst for the O2 electrode in rechargeable lithium batteries. , 2008, Angewandte Chemie.
[53] J. Nørskov,et al. Ammonia for hydrogen storage: challenges and opportunities , 2008 .
[54] J. Galloway,et al. An Earth-system perspective of the global nitrogen cycle , 2008, Nature.
[55] M. Koper,et al. Mechanism of electrocatalytic reduction of nitric oxide on Pt(100). , 2005, The journal of physical chemistry. B.
[56] H. Jónsson,et al. Origin of the Overpotential for Oxygen Reduction at a Fuel-Cell Cathode. , 2004, The journal of physical chemistry. B.
[57] Robert Schlögl,et al. Catalytic synthesis of ammonia-a "never-ending story"? , 2003, Angewandte Chemie.
[58] J. González-Rodríguez,et al. Electron paramagnetic resonance in MnO2 powders and comparative estimation of electric characteristics of power sources based on them in the MnO2–Zn system , 2003 .
[59] J. Mitchell,et al. Mn 3s exchange splitting in mixed-valence manganites. , 2002 .
[60] Pio Forzatti,et al. Present status and perspectives in de-NOx SCR catalysis , 2001 .
[61] M. Shibata,et al. Reduction of nitrogen monoxide to nitrogen at gas diffusion electrodes with noble metal catalysts , 1998 .
[62] G. Watt,et al. Spectrophotometric Method for Determination of Hydrazine , 1952 .
[63] Abdullah M. Asiri,et al. High-efficiency electrochemical conversion of nitric oxide into ammonia on Ni2P nanoarray at ambient conditions , 2021, Journal of Materials Chemistry A.
[64] Whitney M. Weikum,et al. Association of Prenatal Exposure to Air Pollution With Autism Spectrum Disorder , 2019, JAMA pediatrics.
[65] B. Miller. Formation and Control of Nitrogen Oxides , 2017 .
[66] M. Koper,et al. Mechanistic study of the nitric oxide reduction on a polycrystalline platinum electrode , 2001 .