The massive emission of CO2 due to the heavy use of fossil fuels has posed serious challenges to the climate and environment during the past decades [1]. A solid oxide electrolysis cell (SOEC), which can electrolyze CO2 into CO with high efficiency, can utilize the electricity produced by intermittent renewable energy to alleviate CO2 emissions and fossil fuel consumption, and has therefore attracted extensive attention [2-4]. Compared with CO2 electroreduction in liquid electrolytes at room temperature [5-8], SOEC has a solid-state configuration, which potentially avoids corrosion and leakage problems. Furthermore, the high operating temperature of SOECs also presents great advantages in terms of kinetics and thermodynamics [2], thus achieving high current density and energy conversion efficiency for CO2 electroreduction and avoiding the use of expensive noble metals [9].
A typical SOEC is assembled using a porous cathode, compact Y2O3-stabilized ZrO2 (YSZ) electrolyte, and porous anode in the form of a " sandwich" [3]. For CO2 electroreduction in SOECs, the CO2 reactant gas diffuses to the three phase boundaries (TPBs) of the cathode and is reduced to CO and O2– by accepting two electrons; the produced CO is released from the cathode surface, while O2– combines with an oxygen vacancy (VO, cathode∙∙) to form lattice oxygen (OO, cathodeX) (Reaction (1)). Then, OO, cathodeX is conducted through the YSZ electrolyte via oxygen vacancies and evolves into O2 at the TPBs of the anode by losing electrons (Reaction (2)). Apparently, the oxygen evolution reaction (OER) occurring at the anode is a four-electron process, suggesting that anode polarization might dominate the polarization loss of SOEC during CO2 electroreduction [10]. Therefore, developing anode materials with high electrocatalytic activity for the OER is required to effectively improve the performance of SOECs in CO2 electroreduction.
According to Reaction (2), an excellent anode material for the OER has good electronic conductivity, high electrocatalytic activity, as well as a large number of oxygen vacancies (which is related to ionic conductivity). (La, Sr)(Co, Fe)O3-δ (LSCF), which is commonly used in solid oxide fuel cells as an oxygen reduction reaction cathode material, has been investigated as a promising OER anode material for SOEC, owing to its mixed conductivity and superior electrocatalytic activity [11]. Unfortunately, the conventional LSCF anode suffers from limited electrocatalytic activity in CO2 electrolysis because the pure LSCF anode can only provide LSCF-gas two-phase boundaries (2 PBs) for the OER. It has been widely accepted that the electroreduction reactions at the LSCF-gas-doped ceria TPBs are much more facile than that at the LSCF-gas 2 PBs [12]. Thus, introducing doped ceria nanoparticles would be an effective strategy for improving the electrocatalytic activity of the LSCF anode, since these nanoparticles not only exhibit a much higher catalytic activity but also can create critical gas-doped ceria-LSCF TPBs for the OER.
In order to enhance the OER performance on a LSCF-based anode in CO2 electroreduction, the conventional LSCF anode was modified by using Gd0.2Ce0.8O1.9 (GDC) nanoparticles, and a YSZ electrolyte-supported SOEC with the corresponding LSCF-based anodes were fabricated in this work. Introducing GDC nanoparticles in the LSCF anode would not only create abundant active LSCF-GDC-gas TPBs for the OER but also lead to increased surface oxygen vacancies and enhanced bulk oxygen mobility of the anode. The improved performance of SOECs with respect to CO2 electroreduction is achieved by using GDC nanoparticles-modified LSCF anodes. Further, electrochemical impedance spectra (EIS) combined with the distribution of relaxation times (DRT) was employed to analyze the electrode reactions of CO2 electroreduction, and five individual electrode processes were identified. The enhancement mechanism of the OER as a result of GDC nanoparticle introduction was disclosed by discussing the distinct differences in the electrode processes between conventional LSCF and modified GDC/LSCF anodes.
YSZ electrolyte-supported SOECs were employed in this work. YSZ electrolyte pellets were fabricated by dry pressing 8 mol% YSZ (Tosoh) powder at 42 MPa, followed by heat treatment at 1450 ℃ for 10 h. The prepared electrolyte pellets were 20 mm in diameter and 0.5 mm in thickness.
La0.6Sr0.4Co0.2Fe0.8O3-δ (LSCF) powder was prepared by a modified Pechini-type method [13, 14]. La(NO3)2·6H2O (AR, Aladdin Industrial Corporation), Sr(NO3)2 (AR, Sinopharm Chemical Reagent), Fe(NO3)3·9H2O (AR, Sinopharm Chemical Reagent), and Co(NO3)2·6H2O (AR, Sinopharm Chemical Reagent) were dissolved in distilled water. Ammonium citrate (AR, Sinopharm Chemical Reagent) with a molar content 1.2 times that of metal ions was then added as a complexing agent and nitric acid was used to adjust the pH to around 1. The solution was warmed to 80 ℃ and excess water was evaporated under stirring to obtain a viscous gel. Then, the gel was continued to be heated at around 100 ℃ to induce self-propagating combustion and obtain the deep reddish-brown and loose powder. Finally, the powder was collected and calcined at 1000 ℃ for 2 h to obtain the pure LSCF perovskite phase. Similarly, GDC powder was prepared by using the same methods as the LSCF powder.
LSCF|GDC|YSZ|GDC|LSCF assembles were first fabricated. Briefly, GDC and LSCF slurries were prepared by dispersing GDC and LSCF powders, respectively, in a solution of 6 wt% ethyl cellulose (AR, Secoma) and 94 wt% terpinol (AR, Alfa Aesar). The GDC slurry was spin-coated on both sides of the YSZ electrolyte symmetrically and sintered at 1300 ℃ for 2 h to form buffer layers with the purpose of avoiding undesired interactions between the LSCF electrode and YSZ electrolyte. The LSCF slurry was then printed on the GDC layers and treated at 1100 ℃ for 2 h to obtain the LSCF|GDC|YSZ|GDC|LSCF assembles, and the area of the LSCF layer is about 0.5 cm2. A 1.5 mol L–1 GDC aqueous solution was prepared using Ce(NO3)3·6H2O (AR, Sinopharm Chemical Reagent) and Gd(NO3)3·6H2O (AR, Shanghai Chemical Reagent) as raw materials. In this work, LSCF layer on one side of the LSCF|GDC|YSZ|GDC|LSCF assembles was loaded with 5 wt% GDC nanoparticles that acted as the SOEC cathode, while the LSCF layeron the other side acted as the SOEC anode (LSCF anode). Different proportions of 3, 5, 10, and 20 wt% of GDC nanoparticles were introduced to modify the LSCF anode by infiltrating appropriate amounts of the GDC solution and sintering at 800 ℃ for 2 h; these modified anodes were denoted as 3GDC/LSCF, 5GDC/LSCF, 10GDC/LSCF, and 20GDC/LSCF anodes, respectively.
The phase compositions of the anodes were investigated by X-ray diffraction (XRD) analysis using a PANalytical Empyrean diffractometer equipped with a Cu Kα radiation source (λ = 1.5418 Å) operating at 40 mA and 40 kV. The microstructures of the anodes were observed with a FEI QUANTA 200F scanning electron microscope (SEM) operating at 20 kV and a JEM-2100 transmission electron microscopy (TEM) at 200 kV. Temperature-programmed desorption of O2 (O2-TPD) was performed on an Auto Chem Ⅱ 2920 instrument equipped with a mass spectrometer (OmniStar™). The anode samples (40–60 mesh) were first pretreated at 800 ℃ in pure He (50 mL min–1) for 30 min and then cooled to room temperature in the same atmosphere. Subsequently, the samples were switched to O2 and treated for 30 min at room temperature, and then pure He was used to flush them with the purpose of purging the physically adsorbed oxygen and stabilizing the baseline. Finally, O2 was liberated by heating the samples from room temperature to 800 ℃ at a heating rate of 10 ℃ min–1 in pure He by monitoring the signal of m/z = 32.
Electrochemical measurements of the SOECs were performed on a home-made device [10]. Before the test, Au slurry was printed on both the anode and cathode and fired at 500 ℃ for 1 h to serve as the current collector. A mixture of 95% CO2 + 5% N2 flowed to the cathode at a rate of 50 mL min–1 (5% N2 was used to calculate the Faradaic efficiency of CO as an internal standard gas), while the anode was exposed to static air. The products of CO2 electroreduction were detected by on line micro gas chromatography (Agilent 490) equipped with a Molsieve 5A column and TCD detector. The I-V curves, chronoamperometry curves, and EIS were measured on an electrochemical station (PGSTAT302N, Metrohm, Switzerland). The I-V curves were collected from 1.0 to 1.6 V at a scan rate of 5 mV s–1. The EIS were obtained in the frequency range 1 MHz to 0.05 Hz with a signal amplitude of 10 mV.
Fig. 1 displays the XRD patterns of the LSCF and modified GDC/LSCF anodes. The phase composition of LSCF perovskite can be obviously identified for all the anodes, according to the JCPDS data of PDF #49-0284; such a structure ensures the electronic conductivity of the SOEC anode during the OER. Compared with the LSCF anode, new peaks of GDC fluorite emerged for the 5GDC/LSCF, 10GDC/LSCF, and 15GDC/LSCF anodes, according to the JCPDS data of PDF #50-0201, since GDC nanoparticles were introduced on the LSCF surface. To be noted, no obvious diffraction peaks of GDC are detected for the 3GDC/LSCF anode because of its low GDC content. Moreover, with increasing GDC loading, the intensity of the GDC diffraction peaks gradually enhanced. Fig. 1 also shows that no impurity peaks or peak shifts are observed in the XRD patterns of the GDC/LSCF anodes, which is indicative of the good chemical compatibility between the GDC nanoparticles and LSCF anode.
In Fig. 2, the typical SEM images of the LSCF and GDC/LSCF anodes, as well as the TEM image of the infiltrated GDC nanoparticles, are illustrated. As shown in Fig. 2(a), LSCF particles with sizes of ca. 200–700 nm are closely connected to form a porous LSCF anode, which reveals continuous electron conduction paths, provides sites for the OER, and facilitates the diffusion of the oxygen molecules generated. After GDC infiltration, the GDC nanoparticles are dispersed on the LSCF anode (Fig. 2(b)–(e)). It can be clearly seen that the number of GDC nanoparticles on the LSCF anode gradually increase with GDC loading. For the 3GDC/LSCF anode (Fig. 2(b)), only a small number of GDC nanoparticles are sparsely dispersed on the LSCF anode surface due to its low GDC loading, which is consistent with the XRD results. With increasing GDC loading, the nanoparticles gradually form a nanonetwork on the LSCF anode surface (Fig. 2(c) and (d)), thus creating abundant active LSCF-GDC-gas TPBs for the OER. However, there appears to be coarsening of the GDC nanoparticles when the GDC loading is further increased to 20 wt% (Fig. 2(e)), because high GDC loading tends to cause nanoparticle growth during the sintering process. This has a negative effect on the enlargement of TPBs, while the accumulated GDC nanoparticles might also retard O2 diffusion at the anode. Furthermore, we evaluate the size of the GDC nanoparticles via high resolution-TEM (HR-TEM) measurements. Owing to the low sintering temperature, GDC nanoparticles with sizes of ca. 10 nm are obtained in this work (Fig. 2(f)), which facilitates the formation of high TPBs.
The adsorption property of the anodes for O2 evolution is closely related to their performance in the OER. Therefore, O2-TPD of the LSCF anode was performed in this work. For comparison, the O2-TPD for a typical 10GDC/LSCF anode was also performed to investigate the influence of the introduction of GDC nanoparticles. As shown in Fig. 3, for both the LSCF and 10GDC/LSCF anodes, two O2 desorption peaks centered at temperatures of 295 ℃ (α-oxygen) and 760 ℃ (β-oxygen) are observed in the low- and high-temperature ranges, respectively. The α-oxygen originates from the liberation of the weakly chemisorbed oxygen species on the anode surface [15-18]. From the inset in Fig. 3, it can be seen that the 10GDC/LSCF anode exhibits a larger α-oxygen desorption peak than the LSCF anode, which might be attributed to the increased specific surface area of the 10GDC/LSCF anode due to the introduction of the GDC nanoparticles. The β-oxygen peak observed at the higher temperature is ascribed to the desorption of bulk oxygen, accompanied by the partial reduction of higher valence Fe or Co ions [19]. Considering that the desorption of β-oxygen is realized through the exchange of bulk and surface oxygen vacancies [20, 21], the mobility of bulk oxygen in the anode could be reflected in the intensity of the desorption peak. Here, the 10GDC/LSCF anode presents a much larger β-oxygen desorption peak than the LSCF anode, indicating that the introduction of nanosized GDC particles results in increased surface oxygen vacancies and enhanced mobility of bulk oxygen. This is crucial for improving the OER performance of the LSCF anode, because abundant oxygen vacancies and enhanced bulk oxygen mobility accelerate Reaction (2) at the anode. Thereby, the O2-TPD results suggest that OER would be greatly promoted by loading GDC nanoparticles onto the conventional LSCF anode.
To validate the enhancement in performance due to the incorporation of GDC nanoparticles in the LSCF anode, the SOECs based on the LSCF and GDC/LSCF anodes were employed in CO2 electroreduction. In Fig. 4(a), the typical I-V curves of the SOECs are illustrated. At 800 ℃, current density shows an increase with increasing voltage. As shown in Fig. 4(a), for the same voltage, current density appears a peak curve change with increasing loading of GDC nanoparticles, and maximum current density is achieved for the SOEC with the 10GDC/LSCF anode. This point is well illustrated by the chronoamperometry measurement at 800 ℃ and 1.6 V. According to Fig. 4(b), current density of the SOEC with the LSCF anode is 0.420 A cm–2 at 800 ℃ and 1.6 V, which would increase to 0.473 A cm–2 when introducing 3 wt% GDC nanoparticles in the LSCF anode. The maximum current density of 0.555 A cm–2 is obtained when increasing the GDC loading to 10 wt%. With further increase in the GDC loading to 20 wt%, a decline in the current density of the SOEC (0.514 A cm–2) is observed. In Fig. 4(c), the current densities of the conventional LSCF anode and optimal 10GDC/LSCF anode at 800 ℃ are compared for various electrolysis voltages. Stable current densities of 0.521, 0.369, 0.233, and 0.114 A cm–2 are achieved at 1.6, 1.4, 1.2, and 1.0 V, respectively, for the SOEC with the 10GDC/LSCF anode, which are about 1.3, 1.34, 1.45, and 1.81 times those of the SOEC with the conventional LSCF anode, respectively. This suggests that the OER on the LSCF anode could be greatly enhanced by the introduction of GDC nanoparticles at the same electrolysis conditions. Since identical cathodes and electrolytes are employed in the SOECs, their improved electrochemical performance should be attributed to the enhanced OER on the modified LSCF anodes. This implies that CO production, as well as the corresponding Faradaic efficiency, can be used to evaluate the OER occurring at the anode. In Fig. 4(d) the CO productions and Faradaic efficiencies of the LSCF and GDC/LSCF anodes are compared. CO is the main product of CO2 electroreduction in this work, and Faradaic efficiency is higher than 90% for the SOECs for both the anodes. At 800 ℃, CO productions for the SOEC with the 10GDC/LSCF anode are 3.26, 2.40, 1.54, and 0.75 mL min–1 cm–2 at 1.6, 1.4, 1.2, and 1.0 V, respectively, which are significantly higher than those of the SOEC with the conventional LSCF anode (2.37, 1.75, 0.95, and 0.45 mL min–1 cm–2, respectively). This confirms that the GDC nanoparticle-modified LSCF anode can effectively promote CO2 electroreduction owing to its enhanced OER activity.
EIS measurements for the SOECs were performed to investigate the electrode reactions involved in CO2 electroreduction. Fig. 5 displays the EIS of the SOECs with the LSCF and 10GDC/LSCF anodes for various electrolysis voltages and operating temperatures. In general, the high-frequency intercept of the EIS on the x-axis (Z' = 0) represents the Ohmic resistance (Rohm) of the operating SOEC, which is strongly dependent on the thickness of the YSZ electrolyte. Meanwhile, the distance between the highest and lowest frequency intercepts of the EIS on the x-axis (Z' = 0) corresponds to the electrode polarization resistance (Rp), which mainly originates from the electrode reactions. Owing to the same YSZ electrolyte being employed, Rohm only shows a slight change before and after GDC nanoparticle introduction under the same conditions as those observed in Fig. 5(a) and (b). Notably, Rp presents distinct changes when different anodes are used for the SOECs. The higher the electrolysis voltage, the smaller is the Rp value. At 800 ℃, the SOEC with the 10GDC/LSCF anode displays Rp values of 0.225, 0.288, 0.389, and 0.625 Ω cm2 at 1.6, 1.4, 1.2, and 1.0 V respectively, which are only 54%, 53%, 51%, and 55% of those of the SOEC with the conventional LSCF anode. The influence of operating temperature on Rohm and Rp are illustrated in Fig. 5(c) and (d). Apparently, a high temperature favors the reduction of Rohm and Rp. To compare the differences between the LSCF and 10GDC/LSCF anodes, the Rohm and Rp values are listed in Table 1. SOECs with different anodes reveal similar Rohm at the same operating temperature. However, compared with the conventional LSCF anode, the 10GDC/LSCF anode enables the SOEC to achieve a much lower Rp. The EIS results suggest that the Rp of the SOEC is greatly reduced through the introduction of GDC nanoparticles in the LSCF anode owing to the enhanced OER on the GDC/LSCF anode.
EIS can be used to identify the individual electrode processes dominating SOEC performance by distinguishing the characteristic relaxation frequency difference of each process [22, 23]. However, owing to the low frequency resolution of EIS, two neighboring electrode processes cannot be discriminated until they have at least two or three orders of magnitude difference in their characteristic relaxation frequency. As illustrated in Fig. 5, only two separate arcs are clearly observed, implying that significantly more electrode processes overlapped in these two individual EIS arcs that cannot be distinguished. In order to distinguish the overlapped individual electrode processes, the DRT with a high frequency resolution is applied to the deconvolution of EIS data in this work [24-26]. The DRT calculations were performed using the Ftikreg software package [24, 26]. Fig. 6 exhibits the DRT results of the SOECs under different operating conditions based on the EIS data presented in Fig. 5. The peaks in the DRT plots represent the individual electrode processes overlapped in the EIS, and the peak area reflects the corresponding polarization resistance of each process. Five peaks marked P1 to P5 from the high to low frequency range are clearly observed in the DRT plots, suggesting that five individual electrode processes are involved based on the EIS. In Fig. 6(a) and (b), the five individual electrode processes are observed in similar frequency ranges and reveal the same trends with increasing operating temperature, indicating that the SOECs with the LSCF and 10GDC/LSCF anodes have the same individual electrode processes occurring in CO2 electroreduction. Furthermore, using the 10GDC/LSCF anode can remarkably reduce the peak areas associated with all the electrode processes, except that of P4 (Fig. 6(c)). This suggests that the introduction of GDC nanoparticles in the LSCF anode can decrease the polarization resistances of the related electrode processes, rather than changing the mechanism of the electrode reactions occurring in SOECs. To be noted, since the same cathode is employed, the P4 process is probably ascribed to the CO2 electroreduction reaction at the cathode, whereas the P1–P3 and P5 processes must be OER-related anode processes. As displayed in Fig. 6(d), the P1 and P2 processes are slightly affected by the electrolysis voltage, though the P3–P5 processes strongly depend on this voltage. This suggests that the P3–P5 processes are charge transfer related processes.
Combining the above results with the literature [27-30], we assign P1, P3, P2, and P5 to O2– transfer in the anode, O2– losing an electron to form the O– intermediate species, surface diffusion of charged O– to 2PBs/TPBs, and O– releasing another electron to produce O2, respectively. The enhancement mechanism of the GDC/LSCF anode on the OER can be disclosed by analyzing the effect of the introduction of GDC nanoparticles on the electrode processes. In this work, introducing ionically conductive GDC nanoparticles in the LSCF anode significantly increases the ionic conductivity of the SOEC anode, enhancing the O2– transfer process and reducing the corresponding polarization resistance of P1. Additionally, the existence of GDC nanoparticles also results in an increase in TPBs in the anode, shortening the diffusion path of the O– species and simultaneously enhancing the mobility of bulk oxygen, which when taken together, contribute to obviously accelerated charge transfer (P3 and P5) processes, as well as the surface diffusion process (P2).
GDC nanoparticles of sizes ca. 10 nm are deposited on the surface of a porous LSCF anode by a one-step solution infiltration process that results in significant OER performance enhancement in SOECs. EIS and DRT analysis indicate that the OER at the SOEC anode occurs through four individual electrode processes: O2– transfer at the anode, O2– loses an electron to form the O– intermediate species, surface diffusion of the charged O– to the 2PBs or TPBs, and O– loses the remaining electron to generate O2. These four individual electrode processes are all enhanced at the 10GDC/LSCF anode because the introduction of GDC nanoparticles significantly increases the TPBs, surface oxygen vacancies, and bulk oxygen mobility, according to SEM and O2-TPD results, which contributed to the performance improvement of the SOECs with the GDC/LSCF anode.