Synthesis, structural and electrochemical properties of sodium nickel phosphate for energy storage devices

被引:81
|
作者
Minakshi, Manickam [1 ]
Mitchell, David [2 ]
Jones, Rob [3 ]
Alenazey, Feraih [4 ,5 ]
Watcharatharapong, Teeraphat [6 ]
Chakraborty, Sudip [6 ]
Ahuja, Rajeev [6 ]
机构
[1] Murdoch Univ, Sch Engn & Informat Technol, Murdoch, WA 6150, Australia
[2] Univ Wollongong, Australian Inst Innovat Mat, Electron Microscope Ctr, Innovat Campus, North Wollongong, NSW 2500, Australia
[3] La Trobe Univ, Ctr Mat & Surface Sci, Bundoora, Vic 3086, Australia
[4] King Abdulaziz City Sci & Technol, Energy Res Inst, Riyadh 11442, Saudi Arabia
[5] Prince Sattam Bin Abdulaziz Univ, Coll Engn, Alkharj 11942, Saudi Arabia
[6] Uppsala Univ, Dept Phys & Astron, Uppsala, Sweden
基金
澳大利亚研究理事会;
关键词
IMPEDANCE SPECTROSCOPY; ELECTRODE MATERIALS; RAMAN-SPECTROSCOPY; PERFORMANCE; SUPERCAPACITORS; GRAPHENE; MARICITE; NAFEPO4; ANODE; PAPER;
D O I
10.1039/c6nr01179a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Electrochemical energy production and storage at large scale and low cost, is a critical bottleneck in renewable energy systems. Oxides and lithium transition metal phosphates have been researched for over two decades and many technologies based on them exist. Much less work has been done investigating the use of sodium phosphates for energy storage. In this work, the synthesis of sodium nickel phosphate at different temperatures is performed and its performance evaluated for supercapacitor applications. The electronic properties of polycrystalline NaNiPO4 polymorphs, triphylite and maricite, t- and m-NaNiPO4 are calculated by means of first-principle calculations based on spin-polarized Density Functional Theory (DFT). The structure and morphology of the polymorphs were characterized and validated experimentally and it is shown that the sodium nickel phosphate (NaNiPO4) exists in two different forms (triphylite and maricite), depending on the synthetic temperature (300-550 degrees C). The as-prepared and triphylite forms of NaNiPO4 vs. activated carbon in 2 M NaOH exhibit the maximum specific capacitance of 125 F g(-1) and 85 F g(-1) respectively, at 1 A g(-1); both having excellent cycling stability with retention of 99% capacity up to 2000 cycles. The maricite form showed 70 F g(-1) with a significant drop in capacity after just 50 cycles. These results reveal that the synthesized triphylite showed a high performance energy density of 44 Wh kg(-1) which is attributed to the hierarchical structure of the porous NaNiPO4 nanosheets. At a higher temperature (>400 degrees C) the maricite form of NaNiPO4 possesses a nanoplate-like (coarse and blocky) structure with a large skewing at the intermediate frequency that is not tolerant of cycling. Computed results for the sodium nickel phosphate polymorphs and the electrochemical experimental results are in good agreement.
引用
收藏
页码:11291 / 11305
页数:15
相关论文
共 50 条
  • [1] Synthesis and Electrochemical Research of the Properties of Mixed Nickel-Cobalt Oxides as Materials for Energy Storage Devices
    Volkov, A., I
    Zhuzhel'skii, D., V
    Tolstopyatova, E. G.
    Kondratiev, V. V.
    [J]. RUSSIAN JOURNAL OF APPLIED CHEMISTRY, 2020, 93 (12) : 1837 - 1844
  • [2] Synthesis and Electrochemical Research of the Properties of Mixed Nickel-Cobalt Oxides as Materials for Energy Storage Devices
    A. I. Volkov
    D. V. Zhuzhel’skii
    E. G. Tolstopyatova
    V. V. Kondratiev
    [J]. Russian Journal of Applied Chemistry, 2020, 93 : 1837 - 1844
  • [3] Impact of nickel substitution on structural, dielectric, magnetic, and electrochemical properties of copper ferrite nanostructures for energy storage devices
    Priyadharsini, R.
    Manoharan, C.
    Bououdina, Mohamed
    Sagadevan, Suresh
    Venkateshwarlu, M.
    Bahadur, S. Asath
    [J]. JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2024, 653 : 917 - 929
  • [4] Investigation on the structural, morphological and electrochemical properties of nickel tungstate for energy storage application
    Packiaraj, R.
    Devendran, P.
    Venkatesh, K. S.
    Nallamuthu, N.
    [J]. INORGANIC CHEMISTRY COMMUNICATIONS, 2021, 126
  • [5] Structural design of graphene for use in electrochemical energy storage devices
    Chen, Kunfeng
    Song, Shuyan
    Liu, Fei
    Xue, Dongfeng
    [J]. CHEMICAL SOCIETY REVIEWS, 2015, 44 (17) : 6230 - 6257
  • [6] Structural, magnetic and electrochemical properties of Al-substituted Ni ferrites for energy storage devices
    Hassan, Shahid
    Ahmad, Mukhtar
    Rehman, Atiq Ur
    Iqbal, Muhammad Waqas
    Shaukat, Saleem Farooq
    Abd-Rabboh, Hisham S. M.
    [J]. JOURNAL OF ENERGY STORAGE, 2022, 55
  • [7] Electrochemical energy storage devices
    Shukla, A.K.
    Prem Kumar, T.
    [J]. Proceedings of the Indian National Science Academy, 2015, 81 (04): : 891 - 902
  • [8] Electrochemical Synthesis of Nanowires Electrodes and their Application in Energy Storage Devices
    Schiavi, Pier Giorgio
    Farina, Luca
    Rubino, Antonio
    Altimari, Pietro
    Navarra, Maria Assunta
    Zanoni, Robertino
    Panero, Stefania
    Pagnanelli, Francesca
    [J]. NANOINNOVATION 2018, 2019, 2145
  • [9] High capacitive amorphous barium nickel phosphate nanofibers for electrochemical energy storage
    Wang, Teng
    Hao, Qingli
    Liu, Jinzhang
    Zhao, Jiachang
    Bell, John
    Wang, Hongxia
    [J]. RSC ADVANCES, 2016, 6 (51): : 45986 - 45992
  • [10] Recent advancements in synthesis, properties, and applications of conductive polymers for electrochemical energy storage devices: A review
    Sumdani, Md Gulam
    Islam, Muhammad Remanul
    Yahaya, Ahmad Naim A.
    Safie, Sairul Izwan
    [J]. POLYMER ENGINEERING AND SCIENCE, 2022, 62 (02): : 269 - 303