| Literature DB >> 35055299 |
Jingxuan He1,2, Ting Qian1,2, Chao Cai1,2, Xia Xiang2, Sean Li3, Xiaotao Zu1,2.
Abstract
Nickel-based selenides are believed to be promising non-precious metal electrocatalysts, and have been widely used for both oxygen evolution reactions (OER) and hydrogen evolution reactions (HER). Here, we control the aging time to prepare NixSey with different fractal structures as a bifunctional catalyst. An obtained sample with an aging time of 80 min shows outstanding electrocatalytic performance for hydrogen evolution reactions (HER) with an overpotential of 225 mV (η@10 mA/cm2) and for oxygen evolution reactions (OER) with an overpotential of 309 mV (η@50 mA/cm2). Moreover, to further improve catalytic activity, we doped Fe in NixSey to obtain the ternary nickel-based selenide, Fe0.2Ni0.8Se (FNSs). The HER activity of FNS increased two-fold at 10 mA/cm2, and the overpotential of OER decreased to 255 mV at 50 mA/cm2. The synthetic strategy and research results of this work have a certain reference value for other low-cost and high-efficiency transition metal catalysts for electrocatalytic water splitting.Entities:
Keywords: HER; OER; doping; electrocatalytic water splitting; electrochemical; nickel selenide
Year: 2022 PMID: 35055299 PMCID: PMC8779249 DOI: 10.3390/nano12020281
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1(a) XRD pattern of NixSey with different aging times; (b–e) SEM images of NixSey with different aging times.
Figure 2High-resolution XPS spectra of NixSey with different aging times. (a) Se 3d; (b) N 2p.
Figure 3Oxygen evolution reaction characterizations of NixSey at different aging times. (a) CV curves of NixSey after iR-correction; (b) relationship between OER overpotential at 50 mA/cm2 and aging time; (c) Cdl values and relative electrochemical active surface areas; (d) Nyquist plots at 1.53 V vs. RHE, the inset image shows the equivalent circuit.
Figure 4Hydrogen evolution reaction characterizations of NixSey with different aging times. (a) LSV curves of NixSey after iR-correction; (b) Tafel slope images; (c) relationship between Tafel slope and overpotential at 10 mA/cm2 at different aging times; (d) Nyquist plots at −1.4 V vs. RHE, the inset image shows the equivalent circuit.
Figure 5XRD patterns of (a) V0.03Ni0.97Se; (b) Mn0.2Ni0.8Se; and (c) Fe0.2Ni0.8Se. High-resolution XPS spectra of (d) V 2p; (e) Mn 2p; (f) Fe 2p.
Figure 6Electrochemical performance of MNixSey (M = V, Mn and Fe). (a) LSV curves of samples in HER; (b) Tafel slope results of HER; (c) CV curves of samples in OER; (d) Cdl values and relative electrochemical active surface areas in the OER process; (e) comparison of HER (overpotential @ 10mA/cm2) and OER activities (overpotential @ 50 mA/cm2).
Figure 7SEM and TEM characterization maps of Fe0.2Ni0.8Se. (a) Fe0.2Ni0.8Se—low magnification SEM; (b) Fe0.2Ni0.8Se—low magnification TEM; (c) Fe0.2Ni0.8Se—high magnification TEM; (d) EDS mapping of Fe, Ni, Se.