General Strategy for Controlled Synthesis of NixPy/Carbon and Its Evaluation as a Counter Electrode Material in Dye-Sensitized Solar Cells

被引:68
作者
Chen, Ming [1 ]
Shao, Len-Leng [2 ]
Yuan, Zhon-Yong [3 ]
Jing, Qiang-Shan [1 ,4 ]
Huang, Ke-Jing [1 ]
Huang, Zhong-Yuan [1 ,5 ]
Zhao, Xiang-Hua [1 ]
Zou, Guo-Dong [1 ]
机构
[1] Xinyang Normal Univ, Coll Chem & Chem Engn, Xinyang 464000, Peoples R China
[2] Grirem Adv Mat Co Ltd, Gen Res Inst Nonferrous Met, Beijing 100088, Peoples R China
[3] Nankai Univ, Sch Mat Sci & Engn, Tianjin 300071, Peoples R China
[4] Xinyang Normal Univ, Henan Prov Key Lab Utilizat Nonmetall Mineral Sou, Xinyang 464000, Peoples R China
[5] Xavier Univ Louisiana, Dept Chem, New Orleans, LA 70125 USA
关键词
dye-sensitized solar cell; counter electrode; nickel phosphide; carbothermal reduction and phophidation; electrocatalytic activity; NICKEL PHOSPHIDE NANOPARTICLES; TRANSITION-METAL PHOSPHIDES; HYDROGEN EVOLUTION; HYDROTREATING ACTIVITY; MESOPOROUS CARBON; PERFORMANCE; PHOSPHORUS; REDUCTION; CATALYSTS; HYDRODESULFURIZATION;
D O I
10.1021/acsami.7b03541
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Hydrothermal treatment of nickel acetate and phosphoric acid aqueous solution followed with a carbothermal reduction assisted phosphorization process using sucrose as the carbon source for the controlled synthesis of NixPy/C was successfully realized for the first time. The critical synthesis factors, including reduction temperature, phosphorus/nickel ratio, pH, and sucrose amount were systematically investigated. Remarkably, the carbon serves as a reducer and plays a determinative role in the transformation of Ni2P2O7 into Ni2P/C. The Synthesis strategy is divided into four distinguishable stages: (1) hydrothermal preparation of Ni-3(PO4)(2)center dot 8H(2)O precursor for stabilizing P sources; (2) dimerization, of Ni-3(PO4)(2)center dot 8H(2)O into more thermal stable Ni2P2O7 amorphous phase along with the generation of NiO; (3) carbothermal reduction and phosphidation of NiO into NixPy (0 <= y/x <= 0.5); and (4) further phosphidation of mixed-phase NixPy and, carbothermal reduction of Ni2P2O7 into single-phase Ni2P. The resultant Ni2P, the highly :active phase in electrocatalysis, was applied as counter electrode,in a dye-sensitized solar cell (DSSC). The DSSC based on Ni2P with 10.4 wt.% carbon, delivers a power conversion efficiency of 9.57%, superior to that of state-of-the-art Pt-based cell (8.12%). The abundant Ni delta+ and P delta- active sites and the metal-like conductivity account for its outstanding catalytic performance.
引用
收藏
页码:17949 / 17960
页数:12
相关论文
共 67 条
  • [1] Recent Trends and Perspectives in Electrochemical Water Splitting with an Emphasis on Sulfide, Selenide, and Phosphide Catalysts of Fe, Co, and Ni: A Review
    Anantharaj, Sengeni
    Ede, Sivasankara Rao
    Sakthikumar, Kuppan
    Karthick, Kannimuthu
    Mishra, Soumyaranjan
    Kundu, Subrata
    [J]. ACS CATALYSIS, 2016, 6 (12): : 8069 - 8097
  • [2] In Situ XRD, XAS, and Magnetic Susceptibility Study of the Reduction of Ammonium Nickel Phosphate NiNH4PO4•H2O into Nickel Phosphide
    Berhault, Gilles
    Afanasiev, Pavel
    Loboue, Hermione
    Geantet, Christophe
    Cseri, Tivadar
    Pichon, Christophe
    Guillot-Deudon, Catherine
    Lafond, Alain
    [J]. INORGANIC CHEMISTRY, 2009, 48 (07) : 2985 - 2992
  • [3] Chemical routes for production of transition-metal phosphides on the nanoscale: Implications for advanced magnetic and catalytic materials
    Brock, SL
    Perera, SC
    Stamm, KL
    [J]. CHEMISTRY-A EUROPEAN JOURNAL, 2004, 10 (14) : 3364 - 3371
  • [4] Metal-Dependent Interplay between Crystallization and Phosphorus Diffusion during the Synthesis of Metal Phosphide Nanoparticles
    Carenco, S.
    Hu, Y.
    Florea, I.
    Ersen, O.
    Boissiere, C.
    Mezailles, N.
    Sanchez, C.
    [J]. CHEMISTRY OF MATERIALS, 2012, 24 (21) : 4134 - 4145
  • [5] Improving the Li-Electrochemical Properties of Monodisperse Ni2P Nanoparticles by Self-Generated Carbon Coating
    Carenco, S.
    Surcin, C.
    Morcrette, M.
    Larcher, D.
    Mezailles, N.
    Boissiere, C.
    Sanchez, C.
    [J]. CHEMISTRY OF MATERIALS, 2012, 24 (04) : 688 - 697
  • [6] Nanoscaled Metal Borides and Phosphides: Recent Developments and Perspectives
    Carenco, Sophie
    Portehault, David
    Boissiere, Cedric
    Mezailles, Nicolas
    Sanchez, Clement
    [J]. CHEMICAL REVIEWS, 2013, 113 (10) : 7981 - 8065
  • [7] Influence of Supports on Structure and Performance of Nickel Phosphide Catalysts for Hydrodechlorination of Chlorobenzene
    Chen, Jixiang
    Zhou, Shaojun
    Ci, Donghui
    Zhang, Jianxiang
    Wang, Rijie
    Zhang, Jiyan
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2009, 48 (08) : 3812 - 3819
  • [8] Construction of Highly Catalytic Porous TiOPC Nanocomposite Counter Electrodes for Dye-Sensitized Solar Cells
    Chen, Ming
    Shao, Leng-Leng
    Xia, Yan
    Huang, Zhong-Yuan
    Xu, Dong-Li
    Zhang, Zong-Wen
    Chang, Zhou-Xin
    Pei, Wei-Jie
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (39) : 26030 - 26040
  • [9] Metal Phosphides Derived from Hydrotalcite Precursors toward the Selective Hydrogenation of Phenylacetylene
    Chen, Yudi
    Li, Changming
    Zhou, Junyao
    Zhang, Shitong
    Rao, Deming
    He, Shan
    Wei, Min
    Evans, David G.
    Duan, Xue
    [J]. ACS CATALYSIS, 2015, 5 (10): : 5756 - 5765
  • [10] Nickel phosphide-embedded graphene as counter electrode for dye-sensitized solar cells
    Dou, Y. Y.
    Li, G. R.
    Song, J.
    Gao, X. P.
    [J]. PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2012, 14 (04) : 1339 - 1342