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Research Article

3D nanosheet networks like mesoporous structure of NiO/CoSe2nanohybrid directly grown on nickel foam for oxygen evolution process

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Pages 1171-1180 | Received 08 Dec 2021, Accepted 13 Nov 2022, Published online: 06 Dec 2022

References

  • Gray HB. Powering the planet with solar fuel. Nat Chem. 2009;1(1):7–7.
  • Peng L, Shen J, Zheng X, et al. Rationally design of monometallic NiO-Ni3S2/NF heteronanosheets as bifunctional electrocatalysts for overall water splitting. J Catal. 2019;369:345–351.
  • Nisa MU, Manzoor S, Abid AG, et al. Cdse supported SnO2 nanocomposite with strongly hydrophilic surface for enhanced overall water splitting. Fuel. 2022;321:124086.
  • Jiao Y, Zheng Y, Jaroniec M, et al. Design of electrocatalysts for oxygen-and hydrogen-involving energy conversion reactions. Chem Soc Rev. 2015;44(8):2060–2086.
  • Zhang SL, Guan BY, Lu XF, et al. Metal atom-doped Co3O4 hierarchical nanoplates for electrocatalytic oxygen evolution. Adv Mater. 2020;32(31):2002235.
  • Katubi KM, Nisa MU, Manzoor S, et al. Hydrothermally fabricated NdTe hollow shells thermally vaporized on Ni foam for water-splitting in alkaline media. Appl Phys A. 2022;128(10):1–10.
  • Gu L-F, Chen JJ, Zhou T, et al. Engineering cobalt oxide by interfaces and pore architectures for enhanced electrocatalytic performance for overall water splitting. Nanoscale. 2020;12(20):11201–11208.
  • Dou Y, He CT, Zhang L, et al. Approaching the activity limit of CoSe2 for oxygen evolution via Fe doping and co vacancy. Nat commun. 2020;11(1):1–9.
  • Zheng S, Chen H, Tong X, et al. Integration of a photo-fenton reaction and a membrane filtration using CS/PAN@ FeOOH/g-C3N4Electrospun nanofibers: synthesis, characterization, self-cleaning performance and mechanism. Appl Catal B: Environ. 2021;281:119519.
  • Subbaraman R, Tripkovic D, Chang K-C, et al. Trends in activity for the water electrolyser reactions on 3 d M (Ni, Co, Fe, Mn) hydr (oxy) oxide catalysts. Nat Mater. 2012;11(6):550–557.
  • Patil SA, Rabani I, Vikraman D, et al. Template-free synthesis of one-dimensional cobalt sulfide nanorod array as an attractive architecture for overall water splitting. Int J Energy Res. 2021;45(2):2785–2796.
  • Rabani I, Hussain S, Vikraman D, et al. 1D-CoSe 2 nanoarray: a designed structure for efficient hydrogen evolution and symmetric supercapacitor characteristics. Dalton Trans. 2020;49(40):14191–14200.
  • Li T, Niu K, Yang M, et al. Ultrathin CoS2 shells anchored on Co3O4 nanoneedles for efficient hydrogen evolution electrocatalysis. J Power Sources. 2017;356:89–96.
  • Shrestha NK, Patil SA, Cho S, et al. Cu–Fe–NH 2 based metal–organic framework nanosheets via drop-casting for highly efficient oxygen evolution catalysts durable at ultrahigh currents. J Mater Chem A. 2020;8(46):24408–24418.
  • Shrestha NK, Patil SA, Han J, et al. Chemical etching induced microporous nickel backbones decorated with metallic Fe@ hydroxide nanocatalysts: an efficient and sustainable OER anode toward industrial alkaline water-splitting. J Mater Chem A. 2022;10(16):8989–9000.
  • Tang C, Cheng N, Pu Z, et al. Nise nanowire film supported on nickel foam: an efficient and stable 3D bifunctional electrode for full water splitting. Angew Chem. 2015;127(32):9483–9487.
  • Qayoom Mugheri, Tahira A, Aftab U, et al. Co3O4/NiO bifunctional electrocatalyst for water splitting. Electrochim Acta. 2019;306:9–17.
  • Prabhu S, Sohila S, Navaneethan D, et al. Three dimensional flower-like CuO/Co3O4/r-GO heterostructure for high-performance asymmetric supercapacitors. J Alloys Compd. 2020;846:156439.
  • Ju H, Liu XD, Tao CY, et al. A novel edge-rich structure of CuO/Co3O4 derived from prussian blue analogue as a high-rate and ultra-stable electrode for efficient capacitive storage. Electrochim Acta. 2021;366:137410.
  • Ramasamy K, Gupta RK, Palchoudhury S, et al. Layer-Structured copper antimony chalcogenides (CuSbSe x S2–x): stable electrode materials for supercapacitors. Chem Mater. 2015;27(1):379–386.
  • Manikandan R, Justin Raj C., Nagaraju G, et al. Selenium enriched hybrid metal chalcogenides with enhanced redox kinetics for high-energy density supercapacitors. Chem Eng J. 2021;414:128924.
  • Zhao Z, Liu H, Gao W, et al. Surface-engineered PtNi-O nanostructure with record-high performance for electrocatalytic hydrogen evolution reaction. J Am Chem Soc. 2018;140(29):9046–9050.
  • Anantharaj S, Ede SR, Sakthikumar K, et al. Recent trends and perspectives in electrochemical water splitting with an emphasis on sulfide, selenide, and phosphide catalysts of Fe, Co, and Ni: a review. ACS Catal. 2016;6(12):8069–8097.
  • Peng X, Yujiao Y, Xun J, et al. Recent advance and prospectives of electrocatalysts based on transition metal selenides for efficient water splitting. Nano Energy. 2020;78:105234.
  • Gao R, Zhang H, Yan D. Iron diselenide nanoplatelets: stable and efficient water-electrolysis catalysts. Nano Energy. 2017;31:90–95.
  • Luo R, Qian Z, Xing L, et al. Re-looking into the active moieties of metal X-ides (X- =  phosph-, sulf-, nitr-, and carb-) toward oxygen evolution reaction. Adv Func Mater. 2021;31(37):2102918.
  • Zhao S, Yang Y, Tang ZJAC. Insight into structural evolution, active sites, and stability of heterogeneous electrocatalysts. Angew Chem. 2021;134:e202110186.
  • Yu Z, Li Y, Martin-Diaconescu V, et al. Highly efficient and stable saline water electrolysis enabled by self-supported nickel-iron phosphosulfide nanotubes with heterointerfaces and under-coordinated metal active sites. Adv Funct Mater. 2022;32:2206138.
  • Yuan H, Wang S, Ma Z, et al. Oxygen vacancies engineered self-supported B doped Co3O4 nanowires as an efficient multifunctional catalyst for electrochemical water splitting and hydrolysis of sodium borohydride. Chem Eng J. 2021;404:126474.
  • Liu Y, Cheng H, Lyu M, et al. Low overpotential in vacancy-rich ultrathin CoSe2 nanosheets for water oxidation. J Am Chem Soc. 2014;136(44):15670–15675.
  • Kong D, Wang H, Cha JJ., et al. Synthesis of MoS2 and MoSe2 films with vertically aligned layers. Nano Lett. 2013;13(3):1341–1347.
  • Long X, Li G, Wang Z, et al. Metallic iron–nickel sulfide ultrathin nanosheets as a highly active electrocatalyst for hydrogen evolution reaction in acidic media. J Am Chem Soc. 2015;137(37):11900–11903.
  • Wu R, Zhang J, Shi Y, et al. Metallic WO2–carbon mesoporous nanowires as highly efficient electrocatalysts for hydrogen evolution reaction. J Am Chem Soc. 2015;137(22):6983–6986.
  • Lukowski MA, Daniel AS, Meng F, et al. Enhanced hydrogen evolution catalysis from chemically exfoliated metallic MoS2 nanosheets. J Am Chem Soc. 2013;135(28):10274–10277.
  • Nazar N, Manzoor S, ur Rehman Y, et al. Metal-organic framework derived CeO2/C nanorod arrays directly grown on nickel foam as a highly efficient electrocatalyst for OER. Fuel. 2022;307:121823.
  • Manzoor S, Ashiq MF, Usman M, et al. Development of excellent and novel flowery zirconia/cadmium sulfide nanohybrid electrode: For high performance electrochemical supercapacitor application. J Energy Storage. 2021;40:102718.
  • Aftab F, Duran H, Kirchhoff K, et al. A facile synthesis of FeCo nanoparticles encapsulated in hierarchical N-doped carbon nanotube/nanofiber hybrids for overall water splitting. Welcome to ICONN-2019. 2020: 35.
  • Yue Z, Zhu W, Li Y, et al. Surface engineering of a nickel oxide–nickel hybrid nanoarray as a versatile catalyst for both superior water and urea oxidation. Inorg Chem. 2018;57(8):4693–4698.
  • Jin Y, Huang S, Yue X, et al. Mo-and Fe-modified Ni (OH) 2/NiOOH nanosheets as highly active and stable electrocatalysts for oxygen evolution reaction. ACS Catal. 2018;8(3):2359–2363.
  • Dinh KN, Gomes VG. Hybrid Ni/NiO composite with N-doped activated carbon from waste cauliflower leaves: A sustainable bifunctional electrocatalyst for efficient water splitting. Carbon. 2020;157:515–524.
  • Prabakaran K, Lokanathan M, Kakade B. Three dimensional flower like cobalt sulfide (CoS)/functionalized MWCNT composite catalyst for efficient oxygen evolution reactions. Appl Surf Sci. 2019;466:830–836.
  • Liang D, et al. In-situ doping of Co in nickel selenide nanoflower for robust electrocatalysis towards oxygen evolution. Int J Hydrogen Energy. 2020;45(51):27047–27055.
  • Zhou Q, Li TT, Qian J, et al. Self-supported hierarchical CuO x@ Co 3 O 4 heterostructures as efficient bifunctional electrocatalysts for water splitting. J Mater Chem A. 2018;6(29):14431–14439.
  • Dong Y, Yang J, Liu Y, et al. 2D Fe-doped NiO nanosheets with grain boundary defects for the advanced oxygen evolution reaction. Dalton Trans. 2020;49(19):6355–6362.
  • Dai W, Lu T, Pan YJJoPS. Novel and promising electrocatalyst for oxygen evolution reaction based on MnFeCoNi high entropy alloy. J Power Sources. 2019;430:104–111.
  • Zhao L, Cao Q, Wang A, et al. Iron oxide embedded titania nanowires–An active and stable electrocatalyst for oxygen evolution in acidic media. Nano Energy. 2018;45:118–126.
  • Fominykh K, Chernev P, Zaharieva I, et al. Iron-doped nickel oxide nanocrystals as highly efficient electrocatalysts for alkaline water splitting. ACS Nano. 2015;9(5):5180–5188.
  • Wang C, Qi L. Heterostructured inter-doped Ruthenium–Cobalt oxide hollow nanosheet arrays for highly efficient overall water splitting. Angew Chem. 2020;132(39):17372–17377.
  • Yan K, Lu YJS. Direct growth of MoS2 microspheres on Ni foam as a hybrid nanocomposite efficient for oxygen evolution reaction. Small. 2016;12(22):2975–2981.
  • Li W, Gao X, Xiong D, et al. Hydrothermal synthesis of monolithic Co3Se4 nanowire electrodes for oxygen evolution and overall water splitting with high efficiency and extraordinary catalytic stability. Adv Energy Mater. 2017;7(17):1602579.