中文
Announcement
More
Progress in Chemistry 2015, Vol. 27 Issue (4): 416-423 DOI: 10.7536/PC140824 Previous Articles   Next Articles

Special Issue: 锂离子电池

• Review and evaluation •

Transition Metal Nitrides for Lithium-Ion Batteries

Chen Ruwen, Tu Xinman*, Chen Dezhi   

  1. College of Environmental and Chemical Engineering, Nanchang Hangkong University, Nanchang 330063, China
  • Received: Revised: Online: Published:
  • Supported by:
    The work was supported by the Program for New Century Excellent Talents in University, Ministry of Education, China (No. NCET-10-0850).
PDF ( 2124 ) Cited
Export

EndNote

Ris

BibTeX

Lithium-ion batteries are currently the most widely used rechargeable batteries due to the excellent properties. Transition metal nitrides are expected to be used as efficient anode materials for lithium-ion batteries benefiting from their low and flat charging-discharging plateau, good reversibility and high capacity. This paper aims to review the research progress on transition metal nitrides and their composites synthesized by physical and chemical methods for applications of lithium-ion batteries. The key issues existed in transition metal nitrides and the viable route to improve the performance of transition metal nitrides based lithium-ion batteries are also discussed.

Contents
1 Introduction
2 Transition metal nitrides for lithium-ion batteries
2.1 Physical method synthesis of transition metal nitrides
2.2 Chemical method synthesis of transition metal nitrides
2.3 Transition metal nitrides composite materials for lithium-ion batteries
3 Conclusion and outlook

CLC Number: 

[1] Ng S H, Wang J Z, Wexler D, Konstantinov K, Guo Z P, Liu H K. Angew. Chem. Int. Ed., 2006, 45: 6896.
[2] Holzapfel M, Buqa H, Scheifele W, Novák P, Petrat F M. Chem. Commun., 2005: 1566.
[3] Sorensen E M, Barry S J, Jung H K, Rondinelli J R, Vaughey J T, Poeppelmeier K R. Chem. Mater., 2006, 18: 482.
[4] Rowsell J L C, Pralong V, Nazar L F. J. Am. Chem. Soc., 2001, 123: 8598.
[5] Takeda Y, Nishijima M, Yamahata M, Takeda K, Imanishi N, Yamamoto O. Solid State Ionics, 2000, 130: 61.
[6] Fu Z W, Wang Y, Yue X L, Zhao S L, Qin Q Z. J. Phys. Chem. B, 2004, 108: 2236.
[7] Yin Y X, Wan L J, Guo Y G. Chin. Sci. Bull., 2012, 57: 4104.
[8] Reddy M V, Subba R G V, Chowdari B V R. Chem. Rev., 2013, 113: 5364.
[9] Hayner C M, Zhao X, Kung H H. Annu. Rev. Chem. Biomol. Eng., 2012, 3: 445.
[10] Takeshi A, Kunio N, Shichio K. Mater. Res. Bull., 1984, 19: 1377.
[11] Yang J, Takeda Y, Imanishi N, Yamamoto O. Electrochim. Acta, 2001, 46: 2659.
[12] Nishijima M, Tadokoro N, Takeda Y, Imanishi N, Yamamoto O. J. Electrochem. Soc., 1994, 141: 2966.
[13] Nishijima M, Kagohashi T, Takeda Y, Imanishi M, Yamamoto O. J. Power Sources, 1997, 68: 510.
[14] Shodai T, Okada S, Tobishima S, Yamaki J. J. Power Sources, 1997, 68: 515.
[15] Gregory D H. Chem. Rec., 2008, 8: 229.
[16] Shodai T, Okada S, Tobishima S, Yamaki J. Solid State Ionics, 1996, 86: 785.
[17] Giordano C, Antonietti M. Nano Today, 2011, 6: 366.
[18] Andrievski R A. J. Mater. Sci., 1997, 32: 4463.
[19] Komiyal S, Tsuruoka K J. Vac. Sci. Technol., 1976, 13: 520.
[20] Schaaf P, Kahle M, Carpene E. Appl. Surf. Sci., 2005, 247: 607.
[21] Vissokov G, Grancharov I, Tsvetanov T. Plasma Sci. Technol., 2003, 5: 2039.
[22] Pereira-Ramos J P, Panabiere E, Emery N, Bach S, Willmann P. Meeting Abstracts. Electrochem. Soc., 2013, 12: 884.
[23] Dong S M, Chen X, Gu Lin, Zhou X H, Li L F, Liu Z H, Han P X, Xu H X, Yao J H, Wang H B, Zhang X Y, Shang C Q, Cui G L, Chen L Q. Energy Environ. Sci., 2011, 4: 3502.
[24] Zhou X H, Shang C Q, Gu L, Dong S M, Chen X, Han P X, Li L F, Yao J H, Liu Z H, Xu H X, Zhu Y W, Cui G L. ACS Appl. Mater. Interfaces, 2011, 3: 3058.
[25] Dong S M, Chen X, Gu L, Zhang L X, Zhou X H, Lium Z H, Han P X, Xua H X, Yao J H, Zhang X Y, Li L F, Shang C Q, Cui G L. Biosens. Bioelectron., 2011, 26: 4088.
[26] Sun Q, Fu Z W. Electrochem. Solid-State Lett., 2007, 10: 189.
[27] Choi D, Kumta P N. J. Am. Ceram. Soc., 2007, 90: 3113.
[28] Yao W, Makowski P, Giordano C. Chem. Eur. J., 2009, 15: 11999.
[29] Choi D, Kumta P N. Electrochem. Solid-State Lett., 2005, 8: 418.
[30] Dong S M, Chen X, Zhang X Y, Cui G L. Coord. Chem. Rev., 2013, 257: 1946.
[31] Yue Y H, Han P X, Dong S M, Zhang K J, Zhang C J, Shang C Q, Cui G L. Chin. Sci. Bull., 2012, 57: 4111.
[32] Wang Y, Fu Z W, Yue X L, Qin Q Z. J. Electrochem. Soc., 2004, 157: 162.
[33] Sun Q, Fu Z W. Electrochim. Acta, 2008, 54: 403.
[34] 孙乾(Sun Q). 复旦大学硕士论文(Master Dissertation of Fudan University), 2009.
[35] Das B, Reddy M V, Malar P, Osipowicz T, Subba R G V, Chowdari B V R. Solid State Ionics, 2009, 180: 1061.
[36] Sun Q, Fu Z W. Electrochem. Solid-State Lett., 2008, 11: 233.
[37] Raman K H T, Penki T R, Munichandraiahb N, Rao G M. Electrochim. Acta, 2014, 125: 282.
[38] Liu Y, Matsumura T, Imanishi N, Ichikawa T, Hirano A, Takeda Y. Electrochem. Commun., 2004, 6: 632.
[39] Panabiere E, Emery N, Bach S, Pereira-Ramos J P, Willmann P. Electrochim. Acta, 2013, 97: 393.
[40] Pereira N, Dupont L, Tarascon J M, Klein L C, Amatucci G G. J. Electrochem. Soc., 2003, 150: 1273.
[41] Debart A, Dupont L, Poizot P, Leriche J B, Tarascon J M. J. Electrochem. Soc., 2001, 148: 1266.
[42] Grugeon S, Laruelle S, Herrera-Urbina R, Dupont L, Poizot P, Tarascon J M. J. Electrochem. Soc., 2001, 148: 285.
[43] Bach S, Pereira-Ramos J P, Ducros J B, Willmann P. Solid State Ionics, 2009, 180: 231.
[44] Pereira N, Klein L C, Amatucci G G. J. Electrochem. Soc., 2002, 149: 262.
[45] Das B, Reddy M V G, Rao V S, Chowdari B V R. J. Mater. Chem., 2012, 22: 17505.
[46] Gillot F, Oró-Solé J, Palacín M R. J. Mater. Chem., 2011, 21: 9997.
[47] Li X, Hasan M M, Hector A L. J. Mater. Chem. A, 2013, 1: 6441.
[48] Balogun M S, Yu M, Huang Y, Li C, Fang P, LiuY, Lu X, Tong Y. Nano Energy, 2015, 1: 34.
[49] Das B, Reddy M V, Chowdari B V R. Nanoscale, 2013, 5: 1961.
[50] Culligan S D, Langmi H W, Reddy V B, McGrady G S. Inorg. Chem. Commun., 2010, 13: 540.
[51] Stoeva Z, Gomez R, Gordon A G, Allan M, Gregory D H, Hix G B, Titman J J. J. Am. Chem. Soc., 2004, 126: 4066.
[52] 辛森(Xin S), 郭玉国(Guo Y G), 万立骏(Wan L J). 中国科学: 化学(Science China Chemistry), 2011, 41: 1229.
[53] Kim I, Kumta P N, Blomgren G E. Electrochem. Solid-State Lett., 2000, 3: 493.
[54] Xua G J, Zhang L X, Guo C W, Gu L, Wang X G, Han P X, Zhang K J, Zhang C J, Cui G L. Electrochim. Acta, 2012, 85: 345.
[55] Liu Y, Horikawa K, Fujiyoshi M, Matsumura T, Imanishi N, Takeda Y. Solid State Ionics, 2004, 172: 69.
[56] Rai A K, Lim J, Mathew V, Gim J, Kang J, Paul B J, Kim D, Ahn S, Kim S, Ahn K, Kim J. Electrochem. Commun., 2012, 19: 9.
[57] Kang Y M, Park S C, Kang Y S, Lee P S, Lee J Y. Solid State Ionics, 2003, 156: 263.
[58] Li Y B, Yan Y R, Ming H, Zheng J W. Appl. Surf. Sci., 2014, 305: 683.
[59] Wu Y, Liu M, Feng H, Li J. Nanoscale, 2014, 6: 14697.
[60] Zhang K J, Wang H B, He X Q, Liu Z H, Wang L, Gu L, Xu H X, Han P X, Dong S M, Zhang C J, Yao J H, Cui G L, Chen L Q. J. Mater. Chem., 2011, 21: 11916.
[61] Novoselov K S, Geim A K. Nat. Mater., 2007, 6: 183.
[62] Liu Y, Mastumura T, Ono Y, Imanishi N, Hirano A,Takeda Y. Solid State Ionics, 2008, 179: 2069.
[63] Yue Y H, Han P X, He X, Zhang K J, Liu Z H, Zhang C J, Dong S M, Gu L, Cui G L. J. Mater. Chem., 2012, 22: 4938.
[64] 庄全超(Zhuang Q C), 陈作锋(Chen Z F), 董全峰(Dong Q F), 姜艳霞(Jiang Y X), 黄令(Huang L), 孙世刚(Sun S G). 科学通报(Chin. Sci. Bull.), 2006, 51: 17.
[65] 田雷雷(Tian L L), 庄全超(Zhuang Q C), 李佳(Li J), 史月丽(Si Y L), 陈建鹏(Chen J P), 陆逢(Lu F), 孙世刚(Sun S G). 科学通报(Chin. Sci. Bull.), 2011, 56: 1431.
[66] Wang H B, Zhang C J, Liu Z H, Wang L, Han P X, Xu H X, Zhang K J, Dong S M, Yao J H, Cui G L. J. Mater. Chem., 2011, 21: 5430.
[67] Lai L F, Zhu J X, Li B S, Zhen Y D, Shen Z X, Yan Q Y, Lin J Y. Electrochim. Acta, 2014, 134: 28.
[1] Yu Xiaoyan, Li Meng, Wei Lei, Qiu Jingyi, Cao Gaoping, Wen Yuehua. Application of Polyacrylonitrile in the Electrolytes of Lithium Metal Battery [J]. Progress in Chemistry, 2023, 35(3): 390-406.
[2] Guohui Zhu, Hongxian Huan, Dawei Yu, Xueyi Guo, Qinghua Tian. Selective Recovery of Lithium from Spent Lithium-Ion Batteries [J]. Progress in Chemistry, 2023, 35(2): 287-301.
[3] Qi Qi, Peizhu Xu, Zhidong Tian, Wei Sun, Yangjie Liu, Xiang Hu. Recent Advances of the Electrode Materials for Sodium-Ion Capacitors [J]. Progress in Chemistry, 2022, 34(9): 2051-2062.
[4] Xinyang Yue, Jian Bao, Cui Ma, Xiaojing Wu, Yongning Zhou. Three-Dimension Skeleton Supported Lithium Metal Composite Anodes through Thermal Infusing Strategy [J]. Progress in Chemistry, 2022, 34(3): 683-695.
[5] Caiwei Wang, Dongjie Yang, Xueqing Qiu, Wenli Zhang. Applications of Lignin-Derived Porous Carbons for Electrochemical Energy Storage [J]. Progress in Chemistry, 2022, 34(2): 285-300.
[6] Yang Zhang, Min Zhang, Hailei Zhao. Double Perovskite Material as Anode for Solid Oxide Fuel Cells [J]. Progress in Chemistry, 2022, 34(2): 272-284.
[7] Kedi Cai, Shuang Yan, Tianye Xu, Xiaoshi Lang, Zhenhua Wang. Investigation of Electrode Materials for Lithium Ion Capacitor Battery [J]. Progress in Chemistry, 2021, 33(8): 1404-1413.
[8] Long Chen, Shaobo Huang, Jingyi Qiu, Hao Zhang, Gaoping Cao. Polymer Electrolyte/Anode Interface in Solid-State Lithium Battery [J]. Progress in Chemistry, 2021, 33(8): 1378-1389.
[9] Yang Chen, Xiaoli Cui. Titanium Dioxide Anode Materials for Lithium-Ion Batteries [J]. Progress in Chemistry, 2021, 33(8): 1249-1269.
[10] Jiasheng Lu, Jiamiao Chen, Tianxian He, Jingwei Zhao, Jun Liu, Yanping Huo. Inorganic Solid Electrolytes for the Lithium-Ion Batteries [J]. Progress in Chemistry, 2021, 33(8): 1344-1361.
[11] Jinhuo Gao, Jiafeng Ruan, Yuepeng Pang, Hao Sun, Junhe Yang, Shiyou Zheng. High Temperature Properties of LiNi0.5Mn1.5O4 as Cathode Materials for High Voltage Lithium-Ion Batteries [J]. Progress in Chemistry, 2021, 33(8): 1390-1403.
[12] Guoyong Huang, Xi Dong, Jianwei Du, Xiaohua Sun, Botian Li, Haimu Ye. High-Voltage Electrolyte for Lithium-Ion Batteries [J]. Progress in Chemistry, 2021, 33(5): 855-867.
[13] Yusen Ding, Pu Zhang, Hong Li, Wenhuan Zhu, Hao Wei. Research Status and Prospect of Li-Se Batteries [J]. Progress in Chemistry, 2021, 33(4): 610-632.
[14] Xianwen Wu, Fengni Long, Yanhong Xiang, Jianbo Jiang, Jianhua Wu, Lizhi Xiong, Qiaobao Zhang. Research Progress of Anode Materials for Zinc-Based Aqueous Battery in a Neutral or Weak Acid System [J]. Progress in Chemistry, 2021, 33(11): 1983-2001.
[15] Zhichao Liu, Hongliang Mu, Yan Li, Liu Feng, Dong Wang, Guangwu Wen. Application of Metal-Organic Frameworks-Derived Conversion-Type Anodes in Alkali Metal-Ion Batteries [J]. Progress in Chemistry, 2021, 33(11): 2002-2023.