Journal of Inorganic Materials ›› 2018, Vol. 33 ›› Issue (6): 653-658.DOI: 10.15541/jim20170350
Special Issue: 电催化研究
• Orginal Article • Previous Articles Next Articles
WANG Hui, YU You-Xing
Received:
2017-07-20
Revised:
2017-10-25
Published:
2018-06-20
Online:
2018-05-24
About author:
WANG Hui. E-mail: sy1501232@buaa.edu.cn
Supported by:
CLC Number:
WANG Hui, YU You-Xing. KOH Alkalized Fe3N Nanoparticles on Electrocatalytic Hydrogen Evolution Reaction[J]. Journal of Inorganic Materials, 2018, 33(6): 653-658.
Element | N K/at% | O K/at% | Fe K/at% |
---|---|---|---|
Fe3N | 22.80 | 4.83 | 72.37 |
Alkalized Fe3N | 13.50 | 12.30 | 74.20 |
Tabel 1 Different elements relative content of Fe3N nanoparticles and alkalized Fe3N nanoparticles
Element | N K/at% | O K/at% | Fe K/at% |
---|---|---|---|
Fe3N | 22.80 | 4.83 | 72.37 |
Alkalized Fe3N | 13.50 | 12.30 | 74.20 |
[1] | SUN S, ZHANG G, GAUQUELIN N,et al. Single-atom catalysis using Pt/graphene achieved through atomic layer deposition. Scientific Reports, 2013, 3(5): 65-65. |
[2] | CHENG N, STAMBULA S, WANG D,et al. Platinum single-atom and cluster catalysis of the hydrogen evolution reaction. Nature Communications, 2016, 7: 13638. |
[3] | HOLLADAY J D, HU J, KING D L,et al. An overview of hydrogen production technologies. Catalysis Today, 2009, 139(4): 244-260. |
[4] | STAFFELL I, GREEN R.The cost of domestic fuel cell micro- CHP systems.International Journal of Hydrogen Energy, 2013, 38(2): 1088-1102. |
[5] | URSUA A, GANDIA L M, SANCHIS P.Hydrogen production from water electrolysis: current status and future trends.Proceedings of the IEEE, 2012, 100(2): 410-426. |
[6] | SUBBARAMAN R, TRIPKOVIC D, CHANG K C,et al. Trends in activity for the water electrolyser reactions on 3d M (Ni, Co, Fe, Mn) hydr (oxy) oxide catalysts. Nature Materials, 2012, 11(6): 550-557. |
[7] | CHOI C H, KIM M, KWON H C,et al. Tuning selectivity of electrochemical reactions by atomically dispersed platinum catalyst. Nature Communications, 2016, 7: 10922. |
[8] | HE F, LI K, YIN C,et al. Single Pd atoms supported by graphitic carbon nitride, a potential oxygen reduction reaction catalyst from theoretical perspective. Carbon, 2017, 114: 619-627. |
[9] | YANG S, TAK Y J, KIM J,et al. Support effects in single-atom platinum catalysts for electrochemical oxygen reduction. ACS Catalysis, 2017, 7(2): 1301-1307. |
[10] | LIU R, ZHANG L Q, YU C, ,et al. Atomic-level-designed catalytically active palladium atoms on ultrathin gold nanowires. Advanced Materials. 2017, 29(7): 604571-1-8. |
[11] | DANILOVIC N, SUBBARAMAN R, CHANG K C,et al. Frontispiece: using surface segregation to design stable Ru-Ir oxides for the oxygen evolution reaction in acidic environments. Angewandte Chemie International Edition, 2014, 53(51): 14016-14021. |
[12] | MCPHERSON I J, VINCENT K A.Electrocatalysis by hydrogenases: lessons for building bio-inspired devices.Journal of the Brazilian Chemical Society, 2014, 25(3): 427-441. |
[13] | ECKENHOFF W T, MCNAMARA W R, DU P,et al. Cobalt complexes as artificial hydrogenases for the reductive side of water splitting. Biochimica Et Biophysica Acta (BBA)-Bioenergetics, 2013, 1827(8): 958-973. |
[14] | GONG M, LI Y, WANG H,et al. An advanced Ni-Fe layered double hydroxide electrocatalyst for water oxidation. Journal of the American Chemical Society, 2013, 135(23): 8452-8455. |
[15] | SONG F, HU X.Exfoliation of layered double hydroxides for enhanced oxygen evolution catalysis.Nature Communications, 2014, 5: 4477. |
[16] | ZOU X, ZHANG Y.Noble metal-free hydrogen evolution catalysts for water splitting.Chemical Society Reviews, 2015, 44(15): 5148-5180. |
[17] | MIN J P, JIN H L, HEMBRAM K,et al. Oxygen reduction electrocatalysts based on coupled iron nitride nanoparticles with nitrogen-doped carbon. Catalysts, 2016, 6(6): 86. |
[18] | BHATTACHARYYA S.ChemInform abstract: iron nitride family at reduced dimensions: a review of their synthesis protocols and structural and magnetic properties.Cheminform, 2015, 46(12): 1601-1622. |
[19] | MIN J P, JIN H L, HEMBRAM K P S S,et al. Oxygen reduction electrocatalysts based on coupled iron nitride nanoparticles with nitrogen-doped carbon. Catalysts, 2016, 6(6): 86. |
[20] | QIAN Y, DU P, WU P,et al. Chemical nature of catalytic active sites for the oxygen reduction reaction on nitrogen-doped carbon- supported non-noble metal catalysts. Journal of Physical Chemistry C, 2016, 120(18): 9884-9896. |
[21] | BEZERRA C W B, ZHANG L, LIU H,et al. A review of heat-treatment effects on activity and stability of PEM fuel cell catalysts for oxygen reduction reaction. Journal of Power Sources, 2007, 173(2): 891-908. |
[22] | MUTHUSWAMY N, BUAN M E M, WALMSLEY J C,et al. Evaluation of ORR active sites in nitrogen-doped carbon nanofibers by KOH post treatment. Catalysis Today, 2018, 301(S1): 11-16. |
[23] | YU F, ZHOU H, ZHU Z,et al. Three-dimensional nanoporous iron nitride film as an efficient electrocatalyst for water oxidation. ACS Catalysis, 2017, 7(3): 2052-2057. |
[24] | DONG G, FANG M, WANG H,et al. Insight into the electrochemical activation of carbon-based cathodes for hydrogen evolution reaction. Journal of Materials Chemistry A, 2015, 3(24): 13080-13086. |
[25] | WANG J, XU F, JIN H, et al. Non-noble metal-based carbon composites in hydrogen evolution reaction: fundamentals to applications. Advanced Materials. 2017, 29(14): 1605838-1-35. |
[26] | TANG C, WANG W, SUN A,et al. Sulfur-decorated molybdenum carbide catalysts for enhanced hydrogen evolution. ACS Catalysis, 2015, 5(11):6956-6963. |
[27] | NASIBULIN A G, RACKAUSKAS S, JIANG H,et al. Simple and rapid synthesis of α-Fe2O3 nanowires under ambient conditions. Nano Research, 2009, 2(5): 373-379. |
[1] | YANG Xin, HAN Chunqiu, CAO Yuehan, HE Zhen, ZHOU Ying. Recent Advances in Electrocatalytic Nitrate Reduction to Ammonia Using Metal Oxides [J]. Journal of Inorganic Materials, 2024, 39(9): 979-991. |
[2] | LI Honglan, ZHANG Junmiao, SONG Erhong, YANG Xinglin. Mo/S Co-doped Graphene for Ammonia Synthesis: a Density Functional Theory Study [J]. Journal of Inorganic Materials, 2024, 39(5): 561-568. |
[3] | JING Xinxin, CHEN Biqing, ZHAI Jiaxin, YUAN Meiling. Ni-Co-B-RE (Sm, Dy, Tb) Composite Electrodes: Preparation by Chemical Deposition Method and Electrocatalytic Hydrogen Evolution Performance [J]. Journal of Inorganic Materials, 2024, 39(5): 467-476. |
[4] | SUN Qiangqiang, CHEN Zixuan, YANG Ziyue, WANG Yimeng, CAO Baoyue. Amorphous Vanadium Oxide Loaded by Metallic Nickel-copper towards High-efficiency Electrocatalyzing Hydrogen Production [J]. Journal of Inorganic Materials, 2023, 38(6): 647-655. |
[5] | HU Yue, AN Lin, HAN Xin, HOU Chengyi, WANG Hongzhi, LI Yaogang, ZHANG Qinghong. RhO2 Modified BiVO4 Thin Film Photoanodes: Preparation and Photoelectrocatalytic Water Splitting Performance [J]. Journal of Inorganic Materials, 2022, 37(8): 873-882. |
[6] | SUN Lian, GU Quanchao, YANG Yaping, WANG Honglei, YU Jinshan, ZHOU Xingui. Two-dimensional Transition Metal Dichalcogenides for Electrocatalytic Oxygen Reduction Reaction [J]. Journal of Inorganic Materials, 2022, 37(7): 697-709. |
[7] | FU Yongsheng, BI Min, LI Chun, SUN Jingwen, WANG Xin, ZHU Junwu. Research Progress on Non-noble Metal/Nitrogen-doped Carbon Composite Materials in Electrocatalytic Oxygen Evolution Reaction [J]. Journal of Inorganic Materials, 2022, 37(2): 163-172. |
[8] | WU Jing, YU Libing, LIU Shuaishuai, HUANG Qiuyan, JIANG Shanshan, ANTON Matveev, WANG Lianli, SONG Erhong, XIAO Beibei. NiN4/Cr Embedded Graphene for Electrochemical Nitrogen Fixation [J]. Journal of Inorganic Materials, 2022, 37(10): 1141-1148. |
[9] | SU Li, YANG Jianping, LAN Yue, WANG Lianjun, JIANG Wan. Interface Design of Iron Nanoparticles for Environmental Remediation [J]. Journal of Inorganic Materials, 2021, 36(6): 561-569. |
[10] | ZHU Yunna, CHEN Biqing, CHENG Tianshu, DU Chan, ZHANG Shimin, ZHAO Jing. Amorphous Nd-Ni-B/NF Rare Earth Composites: Preparation and HER Electrocatalytic Performance [J]. Journal of Inorganic Materials, 2021, 36(6): 637-644. |
[11] | ZHOU Yuzhu, ZHANG Youkui, SONG Li. Noble Metal Phosphide Electrocatalysts and Their Synchrotron-based X-ray Absorption Spectroscopy [J]. Journal of Inorganic Materials, 2021, 36(3): 225-244. |
[12] | LI Neng,KONG Zhouzhou,CHEN Xingzhu,YANG Yufei. Research Progress of Novel Two-dimensional Materials in Photocatalysis and Electrocatalysis [J]. Journal of Inorganic Materials, 2020, 35(7): 735-747. |
[13] | LI Zhao, SUN Qiangqiang, CHEN Suoqian, ZHOU Chunsheng, CAO Jing, WANG Yongfeng, WANG Yanan. Hydrothermal Synthesized Nickel Copper Composite Phosphides as Bifunctional Electrocatalysts for Hydrogen Evolution and Hydrazine Oxidation [J]. Journal of Inorganic Materials, 2020, 35(10): 1149-1156. |
[14] | ZHANG Sheng, JIANG Yi, JI Yuan-Yuan, DU Ying, SHENG Zhen-Huan, YIN Jing-Zhou, LI Qiao-Qi, ZHANG Li-Li. Attapulgite/g-C3N4 Composites: Synthesis and Electrocatalytic Oxygen Evolution Property [J]. Journal of Inorganic Materials, 2019, 34(8): 803-810. |
[15] | SU Kun, ZHANG Ya-Ru, LU Fei, ZHANG Jun, WANG Xi. Platinum Decorated Titanium Dioxide Nanosheets for Efficient Photoelectrocatalytic Hydrogeu Evolution Reaction [J]. Journal of Inorganic Materials, 2019, 34(11): 1200-1204. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||