TY - JOUR
T1 - Tailorable nanoarchitecturing of bimetallic nickel-cobalt hydrogen phosphate
T2 - Via the self-weaving of nanotubes for efficient oxygen evolution
AU - Septiani, Ni Luh Wulan
AU - Kaneti, Yusuf Valentino
AU - Fathoni, Kresna Bondan
AU - Guo, Yanna
AU - Ide, Yusuke
AU - Yuliarto, Brian
AU - Jiang, Xuchuan
AU - Nugraha, N.
AU - Dipojono, Hermawan Kresno
AU - Golberg, Dmitri
AU - Yamauchi, Yusuke
N1 - Funding Information:
This research work was nancially supported by Australian Research Council (ARC) Future Fellowship (FT150100479). D. G. is grateful to the Australian Research Council (ARC) for granting a Laureate Fellowship (FL160100089) and to QUT (Project No. 322170-0355/51 and 322170-0348/07). The authors also acknowledge the nancial grant provided by the Indonesian Ministry of Research, Technology, and Higher Education (RIS-TEK-DIKTI) under the World Class University (WCU) program managed by Institut Teknologi Bandung (ITB). In addition, the authors also acknowledge additional funding provided by RIS-TEK-DIKTI and ITB. N. L. W. S. acknowledges the support from the International Cooperative Graduate Program (ICGP) during her stay at NIMS, Japan. The authors thank Bill Gong from the UNSW Mark Wainwright Analytical Center for the XPS measurements. This work was partly performed at the Queensland node of the Australian National Fabrication Facility (ANFF), a company established under the National Collaborative Research Infrastructure Strategy to provide nano and microfabrication facilities for Australian researchers.
Publisher Copyright:
This journal is © The Royal Society of Chemistry.
PY - 2020/2/14
Y1 - 2020/2/14
N2 - This study demonstrates the tailorable self-weaving of bimetallic nickel-cobalt (Ni-Co) hydrogen phosphate nanotubes into one-dimensional (1D) microspindles or two-dimensional (2D) sheet-like structures by utilizing monodispersed Ni-Co glycerate spheres as sacrificial templates. The conversion process is achieved through a two-step solvothermal method in the presence of phosphoric acid (H3PO4) as a phosphorus source and promoter of the self-weaving process. The formation of such nanotube-assembled architectures is promoted by the "peeling-self-weaving" mechanism, in which the bimetallic Ni-Co hydrogen phosphate nanotubes initially grow on the surface of the Ni-Co glycerate spheres due to the reactions between Ni and Co metals bonded to the glycerate anions with hydrogen phosphate anions present in the solution. This is followed by the peeling of the overgrown nanotubes from the etched glycerate spheres and their self-weaving into 1D or 2D architectures depending on the Ni/Co molar ratio. The electrocatalytic test results reveal the superior activity of the Ni-rich Ni-Co hydrogen phosphate electrode for oxygen evolution reaction (OER) compared to its Co-rich and equimolar counterparts, leading to smaller overpotential of 320 mV and lower Tafel slope of 84 mV dec-1. Post-OER analysis of this sample reveals that the high OER activity is derived from the formation of active Ni-Co oxyhydroxide phase on its surface.
AB - This study demonstrates the tailorable self-weaving of bimetallic nickel-cobalt (Ni-Co) hydrogen phosphate nanotubes into one-dimensional (1D) microspindles or two-dimensional (2D) sheet-like structures by utilizing monodispersed Ni-Co glycerate spheres as sacrificial templates. The conversion process is achieved through a two-step solvothermal method in the presence of phosphoric acid (H3PO4) as a phosphorus source and promoter of the self-weaving process. The formation of such nanotube-assembled architectures is promoted by the "peeling-self-weaving" mechanism, in which the bimetallic Ni-Co hydrogen phosphate nanotubes initially grow on the surface of the Ni-Co glycerate spheres due to the reactions between Ni and Co metals bonded to the glycerate anions with hydrogen phosphate anions present in the solution. This is followed by the peeling of the overgrown nanotubes from the etched glycerate spheres and their self-weaving into 1D or 2D architectures depending on the Ni/Co molar ratio. The electrocatalytic test results reveal the superior activity of the Ni-rich Ni-Co hydrogen phosphate electrode for oxygen evolution reaction (OER) compared to its Co-rich and equimolar counterparts, leading to smaller overpotential of 320 mV and lower Tafel slope of 84 mV dec-1. Post-OER analysis of this sample reveals that the high OER activity is derived from the formation of active Ni-Co oxyhydroxide phase on its surface.
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U2 - 10.1039/c9ta13442e
DO - 10.1039/c9ta13442e
M3 - Article
AN - SCOPUS:85079377972
SN - 2050-7488
VL - 8
SP - 3035
EP - 3047
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 6
ER -