Microwave-Initiated Facile Formation of Ni3Se4 Nanoassemblies for Enhanced and Stable Water Splitting in Neutral and Alkaline Media

被引:146
作者
Anantharaj, Sengeni [1 ,2 ]
Kennedy, Jeevarathinam [3 ]
Kundu, Subrata [1 ,2 ,4 ]
机构
[1] Acad Sci & Innovat Res AcSIR, CSIR Cent Elect Res Inst CSIR CECRI Campus, New Delhi, India
[2] CSIR Cent Elect Res Inst CECRI, Elect Mat Sci ECMS Div, Karaikkudi 630006, Tamil Nadu, India
[3] CSIR Cent Elect Res Inst CECRI, Cent Instrumentat Facil CIF, Karaikkudi 630006, Tamil Nadu, India
[4] Texas A&M Univ, Dept Mat Sci & Mech Engn, College Stn, TX 77843 USA
关键词
electrolysis; water splitting; oxygen evolution; hydrogen evolution; Ni3Se4; nanoassemblies; overpotential; Tafel analysis; HYDROGEN-EVOLUTION REACTION; OXYGEN-EVOLUTION; HIGHLY EFFICIENT; SELENIDE NANOSHEETS; NICKEL-HYDROXIDE; COBALT SELENIDE; ELECTROCATALYST; NANOPARTICLES; ELECTRODE; FILM;
D O I
10.1021/acsami.6b15980
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Molecular hydrogen (H-2) generation through water splitting with minimum energy loss has become practically possible due to the recent evolution of high-performance electrocatalysts. In this study, we fabricated, evaluated, and presented such a high-performance catalyst which is the Ni3Se4 nanoassemblies that can efficiently catalyze water splitting in neutral and alkaline media. A hierarchical nano assembly of Ni3Se4 was fabricated by functionalizing the surface-cleaned Ni foam using NaHSe solution as the Se source with the assistance of microwave irradiation (300 W) for 3 min followed by 5 h of aging at room temperature (RT). The fabricated Ni3Se4 nanoassemblies were subjected to catalyze water electrolysis in neutral and alkaline media. For a defined current density of SO mA cm(-2), the Ni3Se4 nanoassemblies required very low overpotentials for the oxygen evolution reaction (OER), viz., 232, 244, and 321 mV at pH 14.5, 14.0, and 13.0 respectively. The associated lower Tafel slope values (33, 30, and 40 mV dec(-1)) indicate the faster OER kinetics on Ni3Se4 surfaces in alkaline media. Similarly, in the hydrogen evolution reaction (HER), for a defined current density of 50 mA cm(-2), the Ni3Se4 nanoassemblies required low overpotentials of 211, 206, and 220 mV at pH 14.5, 14.0, and 13.0 respectively. The Tafel slopes for HER at pH 14.5, 14.0, and 13.0 are 165, 156, and 128 mV dec(-1), respectively. A comparative study on both OER and HER was carried out with the state-ofthe-art RuO2 and Pt under identical experimental conditions, the results of which revealed that our Ni3Se4 is a far better highperformance catalyst for water splitting. Besides, the efficiency of Ni3Se4 nanoassemblies in catalyzing water splitting in neutral solution was carried out, and the results are better than many previous reports. With these amazing advantages in fabrication method and in catalyzing water splitting at various pH, the Ni3Se4 nanoassemblies can be an efficient, cheaper, nonprecious, and high-performance electrode for water electrolysis with low overpotentials.
引用
收藏
页码:8714 / 8728
页数:15
相关论文
共 59 条
  • [1] Unprotected and interconnected Ru0 nano-chain networks: advantages of unprotected surfaces in catalysis and electrocatalysis
    Anantharaj, S.
    Jayachandran, M.
    Kundu, Subrata
    [J]. CHEMICAL SCIENCE, 2016, 7 (05) : 3188 - 3205
  • [2] Self-assembled IrO2 nanoparticles on a DNA scaffold with enhanced catalytic and oxygen evolution reaction (OER) activities
    Anantharaj, S.
    Karthik, P. E.
    Kundu, Subrata
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (48) : 24463 - 24478
  • [3] 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
  • [4] Pt Nanoparticle Anchored Molecular Self-Assemblies of DNA: An Extremely Stable and Efficient HER Electrocatalyst with Ultralow Pt Content
    Anantharaj, Sengeni
    Karthik, Pitchiah E.
    Subramanian, Balasubramanian
    Kundu, Subrata
    [J]. ACS CATALYSIS, 2016, 6 (07): : 4660 - 4672
  • [5] Raman investigation of InSe and GaSe single-crystals oxidation
    Balitskii, OA
    Savchyn, VP
    Yukhymchuk, VO
    [J]. SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 2002, 17 (02) : L1 - L4
  • [6] Electrocatalysis of the hydrogen-evolution reaction by electrodeposited amorphous cobalt selenide films
    Carim, Azhar I.
    Saadi, Fadl H.
    Soriaga, Manuel P.
    Lewis, Nathan S.
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2014, 2 (34) : 13835 - 13839
  • [7] Amorphous FeOOH Oxygen Evolution Reaction Catalyst for Photoelectrochemical Water Splitting
    Chemelewski, William D.
    Lee, Heung-Chan
    Lin, Jung-Fu
    Bard, Allen J.
    Mullins, C. Buddie
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2014, 136 (07) : 2843 - 2850
  • [8] Advances in electrocatalysts for oxygen evolution reaction of water electrolysis -from metal oxides to carbon nanotubes
    Cheng, Yi
    Jiang, San Ping
    [J]. PROGRESS IN NATURAL SCIENCE-MATERIALS INTERNATIONAL, 2015, 25 (06) : 545 - 553
  • [9] 'In situ' and 'ex situ' characterization of the surface properties of the RuO2(x)+Co3O4(1-x) system
    Da Silva, LM
    Boodts, JFC
    DeFaria, LA
    [J]. ELECTROCHIMICA ACTA, 2000, 45 (17) : 2719 - 2727
  • [10] Developments and perspectives of oxide-based catalysts for the oxygen evolution reaction
    Fabbri, E.
    Habereder, A.
    Waltar, K.
    Koetz, R.
    Schmidt, T. J.
    [J]. CATALYSIS SCIENCE & TECHNOLOGY, 2014, 4 (11) : 3800 - 3821