Electro-synthesized Co(OH)2@CoSe with Co–OH active sites for overall water splitting electrocatalysis

Constructing noble metal-free electrocatalytically active sites for the simultaneous hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) in alkaline solution is key to realizing electricity-driven water splitting in practical applications. Here, we rationally designed Co(OH)2@CoSe nanorods (NRs) as an excellent bifunctional electrocatalyst by an in situ electrochemical transformation strategy, where the Co-based nanorod template was converted into Co(OH)2@CoSe at the cathode. The obtained electrode exhibits superior electrocatalytic activity for both the HER (overpotential of 208 mV at 20 mA cm−2) and the OER (268 mV at 20 mA cm−2) at high current density in a 1 M KOH solution. The theoretical calculations and experimental evidence indicate that the chemical coupling Co–OH active site between Co(OH)2 and CoSe regulates the hydrogen adsorption and desorption energy and fast electron transfer capability, which is responsible for the improved HER. Moreover, the Co(OH)2@CoSe NRs can be further converted into CoOOH nanosheets which serve as OER active sites. Toward practical electrolytic cell applications, the Co(OH)2@CoSe nanorods as both the cathode and anode achieved a current density of 100 mA cm−2 at 1.94 V for overall water splitting, better than that of noble metal-based electrocatalysts.


Introduction
Electricity-driven water splitting is one of the fastest developing energy conversion technologies for renewable energy. 1,2 The overall water splitting reaction consists of simultaneous electrolysis processes of both the hydrogen evolution reaction (HER) at the cathode and the oxygen evolution reaction (OER) at the anode. Due to the huge energy barriers in the H*/O* adsorption/desorption process and mass transfer resistance under high current during both the HER and OER, efficient electrocatalysts are needed to reduce the overpotential and accelerate the kinetics of the reaction. [3][4][5] At present, noble metal-based materials are considered state-of-the-art electrocatalysts for water splitting, e.g. Pt-based alloys for the HER 6 and Ir or Ru-based oxides for the OER. 7 However, the high cost and scarcity severely hinder their large-scale applications. Recently, some efficient and stable nonprecious metal-based electrocatalysts for the HER in acidic media and the OER in alkaline media have been investigated. [8][9][10][11][12] However, the problem with these traditional electrocatalysts is that they lack HER activity in strongly basic electrolytes, and good OER catalysts are unstable in strongly acidic solutions. [13][14][15] Therefore, it is still a great challenge to develop efficient bifunctional transition-metal active sites to simultaneously realize overall water splitting to H 2 and O 2 in the same electrolyte.
Electrosynthesis is a facile and energy-saving synthetic and preparative technology to obtain electrochemically active materials directly anchored on conducting substrates without extra binders. [47][48][49][50][51] Sun and co-workers 38 reported on an electrochemical deposition method to fabricate a CoSe/Ti electrode as a bifunctional electrocatalyst for water splitting. Switzer and coworkers 44 reported that Co 2+ and OH À could be electrodeposited onto the cathode to form Co(OH) 2 . In addition, we have developed a modied electrosynthesis method to realize controllable preparation in terms of both the composition and morphology, where a Co-based nanowire precursor was converted into CoO without morphology destruction. 50,51 These considerations inspire us to exploit an in situ electrosynthesis strategy to fabricate one-dimensional (1D) Co(OH) 2 @CoSe nanostructures.
Here, we report a novel in situ electrochemical transformation strategy to fabricate Co(OH) 2 @CoSe nanorods (NRs) vertically oriented on conductive carbon cloth (CC). The controllable electrochemical selenization process works at a continuous negative voltage of À0.7 V (vs. the saturated calomel electrode, SCE) in a SeO 2 solution, where Se 2À derived from Se 4+ and OH À from H 2 O combined with Co 2+ ions from the Co-based nanorod precursor at the cathode. Then, the vertically oriented Co-based nanorods are in situ converted into Co(OH) 2 @CoSe NRs. The obtained Co(OH) 2 @CoSe NRs with a large accessible surface area and good charge transport capability exhibit good electrocatalytic activity with small overpotentials of 208 mV for the HER and 268 mV for the OER at a current density of 20 mA cm À2 in alkaline solution. Theoretical calculations reveal that chemical coupling Co-OH active site between Co(OH) 2 and CoSe regulates the H adsorption and desorption energy to promote the HER kinetics, and the CoOOH converted from Co(OH) 2 @CoSe during the OER acts as the real active site for the OER. For an overall water splitting electrolytic cell, the Co(OH) 2 @CoSe NRs need a low voltage of 1.94 V at 100 mA cm À2 with catalytic activity and stability much better than those of the (À)Pt/C//RuO 2 (+) cell.

Results and discussion
In situ electrochemical transformation was used to prepare CC@Co(OH) 2 @CoSe nanorods (NRs). As shown in Fig. 1, Cobased NRs were rst grown on carbon cloth (CC) as the template through a solvothermal process. The transformation process proceeded at À0.7 V (vs. Hg/Hg 2 Cl 2 , SCE) at 60 C for 40 min in a SeO 2 /KCl solution. Scanning electron microscopy (SEM) images show that the well-dened Co-based nanowires (NWs) and nanorods (NRs) were vertically grown on the surface of carbon cloth aer hydrothermal and solvothermal treatment, respectively ( Fig. S1 and S2 †). Subsequent electrochemical transformation conserves the nanorod morphology with a very rough surface (Fig. S3, † 2a and b), while the nanowires were totally destroyed under the same conditions (Fig. S3b †). The size and crystalline structure of individual NRs were investigated by transmission electron microscopy (TEM). The TEM images in Fig. S4 † and 2c reveal that the diameter and length are about 300 nm and 4 mm with a mass loading of 1.3 mg cm À2 on the carbon cloth.
The chemical composition and bonding states were further investigated by X-ray photoelectron spectroscopy (XPS). The survey XPS spectrum in Fig. S5 † shows that the CC@Co(OH) 2 @CoSe is composed of Co, O, C and Se. The high resolution Co 2p spectrum shows four peaks of Co 2p 3/2 iden-tied as Co-Se at 779 eV, Co-OH at 781 and 783.7 eV, and a Co 2+ shake up peak at 786.6 eV (Fig. 2d). Another four peaks of Co 2p 1/2 are identied as Co-Se at 794.4 eV, Co-OH at 796.9 and 799.3 eV, and a Co 2+ shake up peak at 803.7 eV 33,52 with energy separation between Co 2p 3/2 and Co 2p 1/2 of about 15.5 eV. The O 1s spectrum in Fig. 2e shows two peaks at 531.5 and 533.4 eV corresponding to Co 2+ -O and O-H in Co(OH) 2 . For the Se 3d spectrum, the four peaks of Se 3d 5/2 and 3d 3/2 correspond Co- Fig. 1 Schematic illustration of the Se redox active in situ transformation of CC@Co(OH) 2 @CoSe by the cathode electro-synthesis process and CC@CoOOH by the anode water oxidation process. Se 53 and residual Se-Se with an energy separation of about 0.86 eV (Fig. 2f). The XRD patterns in Fig. S6b † show typical Co(OH) 2 diffraction peaks (PDF card 03-0443) without CoSe diffraction signals, which may be due to the low crystallinity of CoSe obtained by the electrochemical transformation. But the Raman spectra provide evidence to support the formation of CoSe, where the four peaks at 169, 465, 508 and 669 cm À1 are assigned to freboldite CoSe, 32 and the peak at 185 cm À1 is associated with the residual amorphous selenium powder (Fig. 2g). Furthermore, the high-resolution TEM (HRTEM) image also shows the Co(OH) 2 @CoSe with interplanar spacings of 0.24 nm for the lattice plane of Co(OH) 2 (011) and 0.31 nm for CoSe (110) (Fig. 2h). The corresponding selected area electron diffraction (SAED) pattern further conrms that the NRs are composed of Co(OH) 2 and CoSe (Fig. 2i). The above results demonstrate that the Co-based NRs are totally transformed to Co(OH) 2 @CoSe during the in situ electrochemical process. The chemical reactions during the transformation to produce Co(OH) 2 @CoSe are shown in eqn (1)-(3).
To probe the key factors determining the Co(OH) 2 @CoSe NR formation, we also prepared CC@Co(OH) 2 @CoSe-25 and CC@Co(OH) 2 @CoSe-95 at temperatures of 25 C and 95 C. It was harder to form CoSe and maintain the Co(OH)F phase at lower synthesis temperatures ( Fig. S6e and S7c †), but at higher synthesis temperatures it was easy to break the nanorod structure and form the Se powder phase (Fig. S6f and S7d †). CC@CoSe-ED was then fabricated using an electrodeposition method and CC@CoSe-CS was obtained by a direct calcination selenization method for comparison. For the CC@CoSe-ED, the carbon cloth was covered by an amorphous CoSe lm ( Fig. S6c and S7a †). For the CC@CoSe-CS, the vertical nanorod arrays were destroyed aer the calcination treatment and were replaced by the CoSe 2 particles (Fig. S6d and S7b †).
The electrocatalytic HER and OER activities were evaluated using the polarization linear sweep voltammograms (LSVs) recorded in a 1 M KOH aqueous solution, where all currents were corrected with 95% iR compensation. The CC@Co(OH) 2 @CoSe NRs exhibit excellent activity for the HER with an overpotential of 208 mV to reach a current density of 20 mA cm À2 . In comparison, the overpotential is only 53 mV for CC@Pt/C, 355 mV for CC@CoSe-ED and 300 mV for CC@CoSe-CS ( Fig. 3a and S10a †). Moreover, a Tafel plot was constructed to present the HER catalytic kinetics (Fig. 3b), where a Tafel slope of 152 mV dec À1 was obtained for CC@Co(OH) 2 @CoSe NRs, smaller than the 169 mV dec À1 for CC@CoSe-ED and the 160 mV dec À1 for CC@CoSe-CS. Although the Tafel slope is higher than the 72 mV dec À1 for CC@Pt/C, the CC@Co(OH) 2 @CoSe NRs show a remarkably high activity at large current density and an overpotential of only 314 mV at 100 mA cm À2 , smaller than those of CC@Pt/C. The CC@Co(OH) 2 @CoSe NRs also exhibit excellent electrocatalytic activity for the OER. Overpotentials of 297 mV and 303 mV are needed to achieve current densities of 100 mA cm À2 and 200 mA cm À2 (Fig. 3d and S10b †), in contrast to the 380 mV at 100 mA cm À2 for RuO 2 . Even at a current density of 20 mA cm À2 , the overpotential is only 268 mV for CC@Co(OH) 2 @CoSe NRs, while it is 312 mV for CC@CoSe-ED, 316 mV for CC@CoSe-CS, 421 mV for CC@Co(OH) 2 and 285 mV for CC@RuO 2 . Correspondingly, the Tafel slope of CC@Co(OH) 2 @CoSe NRs is 65 mV dec À1 , smaller than the 72 mV dec À1 for CC@CoSe-ED, 96 mV dec À1 for CC@CoSe-CS and 90 mV dec À1 for CC@RuO 2 (Fig. 3e). The effects of the electro-transformation reaction temperature and morphology on electrocatalytic activity were then investigated (Fig. S8 †). The CC@Co(OH) 2 @CoSe NRs show superior performances for both the HER and OER compared to CC@Co(OH) 2 @CoSe-25 and CC@Co(OH) 2 @CoSe-95. The Co(OH) 2 @CoSe with broken NW morphology exhibits poor activities for both the HER and OER (Fig. S9 †).
To investigate the surface active sites of CC@Co(OH) 2 @CoSe NRs during the electrocatalytic water splitting process, X-ray photoelectron spectroscopy (XPS) was conducted. Fig. 3c shows that only Co-Se bonds exist in the Se 3d spectrum aer 50 h of the HER, which indicates that the residual Se powder dissolved in the alkaline medium during the HER process. But there is no difference in the Co 2p 3/2 and Co 2p 1/2 spectra for the as-prepared CC@Co(OH) 2 @CoSe NRs and the NRs aer 50 h of the HER (Fig. 3f). Aer the OER process, the Co-Se bond disappeared and the Co 2p spectrum of Co(OH) 2 shis to higher Nanoscale Advances Paper binding energy related to CoOOH, indicating that the Co(OH) 2 @CoSe NRs undergo a second in situ phase transformation during the OER. The O 1s spectrum in Fig. S11 † shis to a lower binding energy further supporting the conversion into CoOOH. Generally, this oxidation transformation is very common in CoSe-based OER catalysts 54,55 and CoOOH is considered the true active site for water oxidation. The SEM images show that the NR morphology still remains aer 50 h of the HER process (Fig. S13a †), but it is replaced by hexagonal nanosheets aer 50 h of the OER process (Fig. S13b †). The XRD pattern of CC@Co(OH) 2 @CoSe aer 50 h of the OER also exhibits a typical hexagonal CoOOH phase (Fig. S14 †).
In order to further understand the excellent activity, the electrochemically active surface area (ECSA) was calculated by measuring the scan-rate dependent cyclic voltammograms (CVs) in a 1 M KOH solution. The electrochemical double-layer capacitance (C dl ) value of CC@Co(OH) 2 @CoSe NRs is 4351 mF cm À2 , higher than the 295 mF cm À2 of carbon cloth, 288 mF cm À2 of CC@CoSe-ED and 331 mF cm À2 of CC@CoSe-CS ( Fig. 3g and S12 †). The roughness factor of CC@Co(OH) 2 @CoSe NRs was calculated to be 14.7, proving that the vertically oriented NR morphology can provide a more exposed active surface than the electrodeposition and calcination selenization methods. Electrochemical impedance spectroscopy (EIS) analysis was performed to gain an insight into the electron and mass transfer during the electrocatalytic process, where the series resistance (R s ) in the Nyquist plot reects the resistance of the electrolyte solution and the charge-transfer resistance (R ct ) indicates the resistance of charge transfer in the catalyst. The CC@Co(OH) 2 @CoSe has the smallest R s and R ct , which indicates good electrical contact and fast charge transfer properties (Fig. 3h). Moreover, the stability results present an increasing overpotential for the HER changing from 208 mV to 270 mV and for the OER from 268 mV to 300 mV over 50 h (Fig. 3i).
To deeply understand the catalytically active sites of the Co(OH) 2 @CoSe NRs, the key reaction coordinate in the alkaline HER and OER on the Co(OH) 2 @CoSe was investigated by DFT calculations. Three structural models of pure CoSe, pure Co(OH) 2 , and Co(OH) 2 @CoSe were constructed for the HER (Fig. 4a-c). Generally, three states can be observed during the HER process: an initial H + state, the adsorption of an intermediate H*, and the nal product of 1/2 H 2 . The Gibbs free energy of intermediate H* adsorption, DG H* , is regard as a major descriptor of HER activity for catalysts, and the Gibbs energy change of |DG H* | is as small as zero represents a highly efficient HER catalyst. A large positive DG H* of 1.00 eV for pure CoSe means that it has very weak H* adsorption, while a large negative DG H* of À0.49 eV for pure Co(OH) 2 indicates that H* adsorption is too strong to desorb the nal H 2 product (Fig. 4e). For Co(OH) 2 @CoSe, Co-1 (Co-OH site at Co(OH) 2 ), Co-2 (Co-Co at CoSe), and Co-3 (octahedral coordinated Co-Se at CoSe) represent three different Co sites (Fig. S15 †), and the |DG H* | values for these sites are 0.29, 0.34 and 1.05, respectively (Fig. 4f). Thus, the Co-OH site is the most favourable site for H* adsorption and desorption for the HER. The |DG H* | value of the Co-OH active site is much smaller than that of pure-CoSe and pure-Co(OH) 2 , facilitating H 2 desorption. Additionally, the density of states (DOS) results show that Co(OH) 2 @CoSe has higher DOS close to the Fermi level (Fig. 4g), which implies a higher electron transfer capability for an enhanced chemical activity. Therefore, chemical coupling of Co(OH) 2 @CoSe can regulate the adsorption and desorption energy of Co-OH active sites to efficiently facilitate the HER kinetics.
Then, we investigated the tailoring of CoOOH (012) on the Gibbs free energy along the OER pathway for *OH, *O, and *OOH (Fig. 4d). The most favourable site of CoOOH is the unsaturated coordinated Co-OH site that can adsorb the above three intermediates, with DG values of 0.59 eV, 1.78 eV, and 3.17 eV (Fig. 4h). The step from *O to *OOH is the ratedetermining step (RDS) due to its largest energy barrier of 1.39 eV. When increasing the potential (U) to 1.23 V, its DG values for *OH, *O, and *OOH are À0.64 eV, À0.67 eV, and À0.51 eV. The RDS is almost equal to zero until U increases to 1.39 eV. The in situ converted CoOOH shows a desired OER activity with the Co-OH site serving as the reactive active site for tailoring the RDS energy of these oxygenated intermediates in the alkaline environment, which facilitates the overall OER kinetics.
Accordingly, encouraged by the excellent OER and HER performances of CC@Co(OH) 2 @CoSe NRs at a large current density, we assembled an overall water splitting electrolytic cell in a 1 M KOH solution with the NRs as both the anode and the cathode (Fig. 5a). For comparison, a CC@Pt/C//CC@RuO 2 cell was also examined under the same conditions with CC@RuO 2 as the anode and CC@Pt/C as the cathode. The CC@Co(OH) 2 @-CoSe cell needed a potential of 1.71 V to realize overall water splitting at a current density of 10 mA cm À2 , slightly higher than that of the CC@Pt/C//CC@RuO 2 cell (10 mA cm À2 at 1.64 V). But, at high current density, the CC@Co(OH) 2 @CoSe cell showed a better performance, where it presented 100 mA cm À2 at 1.94 V in comparison with the 70 mA cm À2 at 1.94 V for the CC@Pt/C// CC@RuO 2 cell. Moreover, the CC@Co(OH) 2 @CoSe cell exhibited an excellent electrolytic stability. The operating voltage for This journal is © The Royal Society of Chemistry 2020 Nanoscale Adv., 2020, 2, 792-797 | 795

Paper
Nanoscale Advances the CC@Co(OH) 2 @CoSe cell required to sustain a current density of 10 mA cm À2 only underwent a 67 mV increase aer 50 h (Fig. 5b). However, the CC@Pt/C//CC@RuO 2 cell exhibited a remarkable potential increase in a very short period, which may be due to the poor stability of RuO 2 in the alkaline medium. The Faraday efficiency value was calculated from the experimentally measured ratio of H 2 to O 2 (2 : 1) (Fig. 5c) and it remains above 94% during 2 h of electrolysis (Fig. 5d).

Conclusion
In summary, we have developed an in situ electrochemical transformation method to fabricate Co(OH) 2 @CoSe nanorods as a bifunctional electrocatalyst. The obtained Co(OH) 2 @CoSe NRs exhibit an excellent electrocatalytic activity and stability for the simultaneous HER and OER. The chemical coupling Co-OH active site between Co(OH) 2 and CoSe can optimize the adsorption and desorption energy for hydrogen to efficiently facilitate the HER. The CoOOH converted by a second electrotransformation during the OER acts as the real active sites for the OER. These merits make the practical electrolytic cell exhibit high overall water splitting efficiency at a large current density. This work provides a novel electro-synthesis technique to develop noble metal-free chemical coupling active sites to regulate electrocatalysts towards real-world water splitting electrolytic cell applications.

Conflicts of interest
There are no conicts to declare.