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      KCI등재 SCOPUS SCIE

      Layered double hydroxide nanomaterials for bifunctional ORR/OER electro-catalyst

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      https://www.riss.kr/link?id=A108354508

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      다국어 초록 (Multilingual Abstract)

      As climate change continues to intensify global warming, energy security has become a major concern to the international community. Given the high energy density, portability, and environmental friendliness of energy conversion and storage devices suc...

      As climate change continues to intensify global warming, energy security has become a major concern to the international community. Given the high energy density, portability, and environmental friendliness of energy conversion and storage devices such as fuel cells, they are being used as clean and effi cient energy sources and widely researched and applied. In a series of nanoscale materials for the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) at the electrode of the fuel cells, they are considered to be promising non-precious metal-based electricity catalysts and there has still been a great opportunity for further development and optimization. One of the ceramic nanomaterials, layered double hydroxides (LDHs) have their unique two-dimensional layered structure, LDHs and their nano-hybrids also have high activity, low cost, long life, and are environmentally friendly. This article provides a comprehensive introduction to the structure of LDH, the latest research progress on the ORR activity and the ORR/OER dual function of the electrochemical catalysts with LDH nanomaterials.

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      참고문헌 (Reference) 논문관계도

      1 L. Shang, "Well-dispersed ZIFderived Co, N-Co-doped carbon nanoframes through mesoporoussilica-protected calcination as efficient oxygen reduction electrocatalysts" 28 (28): 1668-1674, 2016

      2 S. Wang, "Vertically aligned BCN nanotubes as efficient metal-free electrocatalysts for the oxygen reduction reaction, a synergetic effect by co-doping with boron and nitrogen" 50 (50): 11756-11760, 2011

      3 F. Song, "Ultrathin cobalt–manganese layered double hydroxide is an efficient oxygen evolution catalyst" 136 (136): 16481-16484, 2014

      4 Y. J. Yang, "Ultrasonic assisted coating of multiwalled carbon nanotubes with NiFe-layered double hydroxide for improved electrocatalytic oxygen reduction" 823 : 499-504, 2018

      5 L. Qian, "Trinary layered double hydroxides as high-performance bifunctional materials for oxygen electrocatalysis" 5 (5): 1500245-, 2015

      6 X. Long, "Transition metal based layered double hydroxides tailored for energy conversion and storage" 19 (19): 213-226, 2016

      7 W. T. M. Hong, "Toward the rational design of non-precious transition metal oxides for oxygen electrocatalysis" 8 (8): 1404-1427, 2015

      8 W.T. Hong, "Toward the rational design of non-precious transition metal oxides for oxygen electrocatalysis" 8 (8): 1404-1427, 2015

      9 X. J. Chua, "The effect of varying solvents for MoS 2treatment on its catalytic efficiencies for HER and ORR" 19 (19): 6610-6619, 2017

      10 D. Higgins, "The application of graphene and its composites in oxygen reduction electrocatalysis, a perspective and review of recent progress" 9 (9): 357-390, 2016

      1 L. Shang, "Well-dispersed ZIFderived Co, N-Co-doped carbon nanoframes through mesoporoussilica-protected calcination as efficient oxygen reduction electrocatalysts" 28 (28): 1668-1674, 2016

      2 S. Wang, "Vertically aligned BCN nanotubes as efficient metal-free electrocatalysts for the oxygen reduction reaction, a synergetic effect by co-doping with boron and nitrogen" 50 (50): 11756-11760, 2011

      3 F. Song, "Ultrathin cobalt–manganese layered double hydroxide is an efficient oxygen evolution catalyst" 136 (136): 16481-16484, 2014

      4 Y. J. Yang, "Ultrasonic assisted coating of multiwalled carbon nanotubes with NiFe-layered double hydroxide for improved electrocatalytic oxygen reduction" 823 : 499-504, 2018

      5 L. Qian, "Trinary layered double hydroxides as high-performance bifunctional materials for oxygen electrocatalysis" 5 (5): 1500245-, 2015

      6 X. Long, "Transition metal based layered double hydroxides tailored for energy conversion and storage" 19 (19): 213-226, 2016

      7 W. T. M. Hong, "Toward the rational design of non-precious transition metal oxides for oxygen electrocatalysis" 8 (8): 1404-1427, 2015

      8 W.T. Hong, "Toward the rational design of non-precious transition metal oxides for oxygen electrocatalysis" 8 (8): 1404-1427, 2015

      9 X. J. Chua, "The effect of varying solvents for MoS 2treatment on its catalytic efficiencies for HER and ORR" 19 (19): 6610-6619, 2017

      10 D. Higgins, "The application of graphene and its composites in oxygen reduction electrocatalysis, a perspective and review of recent progress" 9 (9): 357-390, 2016

      11 B. A. Pinaud, "Technical and economic feasibility of centralized facilities for solar hydrogen production via photocatalysis and photoelectrochemistry" 6 (6): 1983-2002, 2013

      12 Lu Lu ; Jia Li ; Dickon H.L. Ng ; Ping Yang ; Peng Song ; Min Zuo, "Synthesis of novel hierarchically porous Fe3O4@MgAl–LDH magnetic microspheres and its superb adsorption properties of dye from water" 한국공업화학회 46 : 315-323, 2017

      13 H. Duan, "Synthesis of Ni 4 Yb(OH) 10 NO 3 3H 2 O nanosheets for electrode materials in electrochemical energy storage" 5 (5): 3150-3154, 2018

      14 Y. Wang, "Synergistic effect between strongly coupled CoAl layered double hydroxides and graphene for the electrocatalytic reduction of oxygen" 192 : 196-204, 2016

      15 L. Cao, "Stable composite of flower-like NiFe-layered double hydroxide nucleated on graphene oxide as an effective catalyst for oxygen reduction reaction" 44 (44): 5912-5920, 2019

      16 A. Q. Zhao, "Spinel Mn−Co oxide in N-doped carbon nanotubes as a bifunctional electrocatalyst synthesized by oxidative cutting" 136 : 7551-7554, 2014

      17 P. Yin, "Single cobalt atoms with precise N-coordination as superior oxygen reduction reaction catalysts" 55 (55): 10800-10805, 2016

      18 H. Wang, "Selfsupported hierarchical nanostructured NiFe-LDH and Cu3P weaving mesh electrodes for efficient water splitting" 6 (6): 380-388, 2018

      19 K. B. Ibrahim, "Robust and conductive magnéli phase Ti 4 O 7 decorated on 3D-nanoflower NiRu-LDH as high-performance oxygen reduction electrocatalyst" 47 : 309-315, 2018

      20 Q. Wang, "Recent advances in the synthesis and application of layered double hydroxide (LDH) nanosheets" 112 (112): 4124-4155, 2012

      21 M. Shao, "Recent advances in electrocatalysts for oxygen reduction reaction" 116 (116): 3594-3657, 2016

      22 Y. Nie, "Recent advancements in Pt and Pt-free catalysts for oxygen reduction reaction" 44 (44): 2168-2201, 2015

      23 S. Wang, "Polyelectrolyte functionalized carbon nanotubes as efficient metal-free electrocatalysts for oxygen reduction" 133 (133): 5182-5185, 2011

      24 S. Park, "Oxygen electrocatalysts for water electrolyzers and reversible fuel cells, status and perspective" 5 (5): 9331-9344, 2012

      25 S. Chu, "Opportunities and challenges for a sustainable energy future" 488 (488): 294-303, 2012

      26 A. Sumboja, "One-step facile synthesis of cobalt phosphides for hydrogen evolution reaction catalysts in acidic and alkaline medium" 10 : 15673-15680, 2018

      27 T. Zhan, "Nitrogen doped NiFe layered double hydroxide/reduced graphene oxide mesoporous nanosphere as an effective bifunctional electrocatalyst for oxygen reduction and evolution reactions" 205 : 551-558, 2017

      28 T. Zhan, "NiFe layered double hydroxide/reduced graphene oxide nanohybrid as an efficient bifunctional electrocatalyst for oxygen evolution and reduction reactions" 333 : 53-60, 2016

      29 W. Wang, "NiFe LDH nanodots anchored on 3D macro/mesoporous carbon as a high-performance ORR/OER bifunctional electrocatalyst" 6 (6): 14299-14306, 2018

      30 D. Zhou, "NiCoFe-layered double hydroxides/N-doped graphene oxide array colloid composite as an efficient bifunctional catalyst for oxygen electrocatalytic reactions" 8 (8): 1701905-, 2018

      31 Q. Liu, "NiCo 2 S 4 @graphene as a bifunctional electrocatalyst for oxygen reduction and evolution reactions" 5 : 5002-5008, 2013

      32 L. Guerlou-Demourgues, "New manganesesubstituted nickel hydroxides" 52 (52): 269-274, 1994

      33 S. L. Candelaria, "Nanostructured carbon for energy storage and conversion" 1 (1): 195-220, 2012

      34 K. Lee, "Methanol and proton transport control by using layered double hydroxide nanoplatelets for direct methanol fuel cell" 7 (7): 113-118, 2005

      35 D.S. Su, "Metal-free heterogeneous catalysis for sustainable chemistr" 3 (3): 169-180, 2010

      36 L. Dai, "Metal-free catalysts for oxygen reduction reaction" 115 (115): 4823-4892, 2015

      37 V. Rives, "Layered double hydroxides, present and future" Nova Publishers 2001

      38 M.A. Djebbi, "Layered double hydroxide materials coated carbon electrode, new challenge to future electrochemical power devices" 386 : 352-363, 2016

      39 N. F. Rosli, "Layered PtTe 2 matches electrocatalytic performance of Pt/C for oxygen reduction reaction with significantly lower toxicity" 6 (6): 7432-7441, 2018

      40 X. Wang, "Interlayer space regulating of NiMn layered double hydroxides for supercapacitors by controlling hydrothermal reaction time" 295 : 1-6, 2019

      41 A.I. Khan, "Intercalation chemistry of layered double hydroxides, recent developments and applications" 12 (12): 3191-3198, 2002

      42 H. Y. Su, "Identifying active surface phases for metal oxide electrocatalysts, a study of manganese oxide bi-functional catalysts for oxygen reduction and water oxidation catalysis" 14 (14): 14010-14022, 2012

      43 F. Cavani, "Hydrotalcite-type anionic clays, preparation, properties and applications" 11 (11): 173-301, 1991

      44 Z. P. Xu, "High capacitance electrode materials based on layered double hydroxides prepared by non-aqueous precipitation" 74 : 102-108, 2013

      45 J. Zhao, "Hierarchical NiMn layered double hydroxide/carbon nanotubes architecture with superb energy density for flexible supercapacitors" 24 (24): 2938-2946, 2014

      46 D. W. Wang, "Heterogeneous nanocarbon materials for oxygen reduction reaction" 7 (7): 576-591, 2014

      47 L. Carrette, "Fuel cells–fundamentals and applications" 1 (1): 5-39, 2001

      48 Y. Z. Chen, "From bimetallic metal-organic framework to porous carbon, high surface area and multicomponent active dopants for excellent electrocatalysis" 27 (27): 5010-5016, 2015

      49 Y. Li, "FeNi layered double-hydroxide nanosheets on a 3D carbon network as an efficient electrocatalyst for the oxygen evolution reaction" 33 (33): 158-166, 2016

      50 R.F. Xie, "Facile synthesis and enhanced catalytic performance of graphene-supported Ni nanocatalyst from a layered double hydroxide-based composite precursor" 2 : 7880-7889, 2014

      51 X. Jia, "Fabrication and bifunctional electrocatalytic performance of ternary CoNiMn layered double hydroxides/polypyrrole/reduced graphene oxide composite for oxygen reduction and evolution reactions" 245 : 59-68, 2017

      52 W. Zhang, "Energy-related small molecule activation reactions, oxygen reduction and hydrogen and oxygen evolution reactions catalyzed by porphyrin-and corrole-based systems" 117 (117): 3717-3797, 2017

      53 C. Song, "Electrocatalytic oxygen reduction reaction, in PEM fuel cell electrocatalysts and catalyst layers" Springer 9-134, 2008

      54 M. K. Debe, "Electrocatalyst approaches and challenges for automotive fuel cells" 486 (486): 43-51, 2012

      55 N.T. Suen, "Electrocatalysis for the oxygen evolution reaction, recent development and future perspectives" 46 (46): 337-365, 2017

      56 W. Xia, "Earth-abundant nanomaterials for oxygen reduction" 55 (55): 2650-2676, 2016

      57 X. Zhang, "Dual-site polydopamine spheres/CoFe layered double hydroxides for electrocatalytic oxygen reduction reaction" 170 : 248-255, 2015

      58 Anand Parkash, "Doping of Fe on room-temperature-synthesized CoNi layered double hydroxide as an excellent bifunctional catalyst in alkaline media" Springer Science and Business Media LLC 17 (17): 2943-2956, 2020

      59 G. Chen, "Development of supported bifunctional electrocatalysts for unitized regenerative fuel cells" 149 (149): A1092-A1099, 2002

      60 Y. Jiao, "Design of electrocatalysts for oxygen-and hydrogen-involving energy conversion reactions" 44 (44): 2060-2086, 2015

      61 X. Ren, "Current progress of Pt and Pt-based electrocatalysts used for fuel cells" 4 (4): 15-30, 2020

      62 S. S. Pramana, "Crystal structure and surface characteristics of Sr-doped GdBaCo 2 O 6−δ double perovskites, oxygen evolution reaction and conductivity" 6 : 5335-5345, 2018

      63 X. Xu, "Cobalt layered double hydroxide nanosheets synthesized in water–methanol solution as oxygen evolution electrocatalysts" 6 (6): 5999-6006, 2018

      64 Y. Hua, "Cobalt based metal-organic frameworks and their derivatives for electrochemical energy conversion and storage" 370 (370): 37-59, 2019

      65 X. Jia, "CoNx/NiFeOx/nitrogen-doping reduced graphene oxide nanocomposite derived from layered double hydroxide precursor as an efficient bifunctional electrocatalyst for oxygen electrocatalytic reactions" 26 (26): 1-10, 2020

      66 M. F. P. Duarte, "CoMn-LDH@carbon nanotube composites: bifunctional electrocatalysts for oxygen reactions" 301 : 17-24, 2018

      67 R. Huo, "Co/CoO/CoFe 2 O 4 /G nanocomposites derived from layered double hydroxides towards mass production of efficient Pt-free electrocatalysts for oxygen reduction reaction" 6 (6): 203-206, 2014

      68 X. Xiang, "Co-based catalysts from Co/Fe/Al layered double hydroxides for preparation of carbon nanotubes" 42 (42): 405-409, 2009

      69 Y. Liang, "Co 3 O 4 nanocrystals on graphene as a synergistic catalyst for oxygen reduction reaction" 10 (10): 780-786, 2011

      70 L. Yang, "Carbonbased metal-free ORR electrocatalysts for fuel cells: past, present, and future" 31 (31): 1804799-, 2019

      71 W. Jin, "Biocompatible hydrotalcite nanohybrids for medical functions" 10 (10): 172-, 2020

      72 J. Ma, "BiOCl dispersed on NiFe–LDH leads to enhanced photo-degradation of rhodamine B dye" 109 : 76-82, 2015

      73 Y. Li, "An oxygen reduction electrocatalyst based on carbon nanotube–graphene complexes" 7 (7): 394-, 2012

      74 M. W. Louie, "An investigation of thin-film Ni–Fe oxide catalysts for the electrochemical evolution of oxygen" 135 (135): 12329-12337, 2013

      75 M. Gong, "An advanced Ni−Fe layered double hydroxide electrocatalyst for water oxidation" 135 : 8452-8455, 2013

      76 Y. Zhang, "A novel bifunctional electrocatalyst for unitized regenerative fuel cell" 195 (195): 142-145, 2010

      77 X. Xu, "A nickel iron diselenide-derived efficient oxygen-evolution catalyst" 7 (7): 1-7, 2016

      78 Z. Duan, "A first principles study of oxygen reduction reaction on a Pt (111) surface modified by a subsurface transition metal M (M= Ni Co, or Fe)" 13 (13): 20178-20187, 2011

      79 Y. Gorlin, "A bifunctional nonprecious metal catalyst for oxygen reduction and water oxidation" 132 (132): 13612-13614, 2010

      80 J. Wang, "A Co-N/C hollow-sphere electrocatalyst derived from a metanilic CoAl layered double hydroxide for the oxygen reduction reaction, and its active sites in various pH media" 10 (10): 2508-2518, 2017

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