Makoto Ue*a,
Hitoshi Asahinaab,
Shoichi Matsudaab and
Kohei Uosakiab
aCenter for Green Research on Energy and Environmental Materials, National Institute for Materials Science (NIMS), Japan. E-mail: macue01@gmail.com
bSoftBank-NIMS Advanced Technologies Development Center, 1-1 Namiki, Tsukuba, Ibaraki 305-0044, Japan
First published on 7th December 2020
This work figures out the material balance of the reactions occurring in the O2 electrode of a Li–O2 cell, where a Ketjenblack-based porous carbon electrode comes into contact with a tetraethylene glycol dimethyl ether (TEGDME)-based electrolyte under more practical conditions of less electrolyte amount and high areal capacity. The ratio of electrolyte weight to cell capacity (E/C, g A h−1) is a good parameter to correlate with cycle life. Only 5 cycles were obtained at an areal capacity of 4 mA h cm−2 (E/C = 10) and a discharge/charge current density of 0.4 mA cm−2, which corresponds to the energy density of 170 W h kg−1 at a complete cell level. When the areal capacity was decreased to half (E/C = 20) by setting a current density at 0.2 mA cm−2, the cycle life was extended to 18 cycles. However, the total electric charge consumed for parasitic reactions was 35 and 59% at the first and the third cycle, respectively. This surprisingly large amount of parasitic reactions was suppressed by half using redox mediators at 0.4 mA cm−2 while keeping a similar cycle life. Based on by-product distribution, we will propose possible mechanisms of TEGDME decomposition and report a water breathing behavior, where H2O is produced during charge and consumed during discharge.
A potential candidate, the rechargeable nonaqueous Li–O2 technology, was discovered by Abraham et al. in 1996,4 although the history of Li–O2 chemistry dates back to the 1960s.5 The nonaqueous Li–O2 batteries have garnered considerable research interest over the past decade due to their extremely high theoretical energy densities. For instance, it is calculated to be 3150 W h kg−1,3 by multiplying an assumed operating voltage of 2.7 V by the specific capacity of 1168 A h kg−1 based on the reaction 2Li + O2 = Li2O2.
Although many studies including those in companies such as Samsung,6,7 IBM,8 Toyota9 have been devoted to the discoveries of new materials and reaction mechanisms, the research activity on Li–O2 technology seems to be decreasing around 2015 from the viewpoint of the number of publications.10 Because the nonaqueous Li–O2 batteries are still in their infancy due to numerous problems,11,12 there is no report, which actually attained the energy density of 500 W h kg−1 in a complete cell level as a rechargeable battery.6,10 The present authors also have tried to fabricate a Li–O2 cell for the application to a high altitude platform station (HAPS) and found it difficult to achieve both satisfactory energy density and cycle life. Except a few works,6,7,13 almost all studies reported so far included too much excess weight of electrolytes, which results in much lower energy densities than those of LIBs.10 When the electrolyte amount is decreased to fulfill the energy density of 500 W h kg−1, the cell cannot be cycled.
The electrolytes are the prime suspects for cell failure, and finding stable electrolytes remains as the most pressing scientific challenge.14,15 Although a stable electrolyte has not been found yet, a combination of tetraethylene glycol dimethyl ether (TEGDME, tetraglyme) solvent and lithium bis(trifluoromethanesulfonyl)imide (LiN(CF3SO2)2, LiTFSI) salt is the most popular electrolyte due to its relatively high stability, and various physicochemical properties such as electrolytic conductivity,16–21 viscosity,16,17,21 ion association degree,18,20 Li+ transport number,18,19,21 anodic stability,18,21,22 freezing point,18 boiling point,16,21 vapor pressure,16,21 oxygen solubility,17,21 oxygen diffusion constant,21 flammability,18 contact angle,16 have been reported in addition to cell performance.13,16–23
The discharge reaction is oxygen reduction reaction (ORR) taking place at the positive electrode, which generally uses porous carbon electrodes. It is believed that an oxygen molecule is reduced to form a superoxide radical anion (O2˙−) after extracting one electron from the carbon electrode. The resultant superoxide radical anion can coordinate with one Li+ ion to form an intermediate product, lithium superoxide (LiO2, eqn (1)). LiO2 is not thermodynamically stable and would transiently convert to Li2O2 through either an electrochemical reaction (eqn (2)) and/or a chemical disproportionation reaction (eqn (3)). On the other hand, the charge reaction is oxygen evolution reaction (OER), where Li2O2 is oxidized to O2 either by initial delithiation via Li2−xO2 or LiO2 (a mirror process of eqn (2)) followed by the reaction (eqn (3)) and/or a direct two-electron electrochemical reaction without the formation of LiO2 (eqn (4)).
O2 + Li+ + e− → LiO2 | (1) |
LiO2 + Li+ + e− → Li2O2 | (2) |
2LiO2 → Li2O2 + O2 | (3) |
Li2O2 → O2 + 2Li+ + 2e− | (4) |
The parasitic reactions have traditionally been ascribed to the reactions with reduced oxygen species (O2˙− and O22−), however, recent studies proved that singlet oxygen (1O2), which is partly generated by the superoxide disproportionation (eqn (3)), accounts for the majority of parasitic reaction by-products both on discharge and charge.24 Many papers suggest that TEGDME decomposes in the carbon positive electrode during discharge and charge, however, it is only reported that the formation of Li2O2 on the first discharge was accompanied by the formation of Li2CO3, HCO2Li, CH3CO2Li, polyethers/esters, CO2, H2O25 and CH3OH, CH3OCH2CH2OH, CH3O(CH2CH2O)2CH3,26 and the electrochemical decomposition of Li2O2 to O2 on recharge was accompanied by more harsh decomposition with the similar by-products. If the TEGDME reacts with the superoxide radical anion, it can form new radicals, leading to by-products proposed by eqn (5).25
(5) |
Furthermore, it is well known that coulombic efficiency (CE) of Li metal negative electrodes in nonaqueous electrolytes during cycling is very low due to the high reactive nature of Li metal, and most researchers use a thick Li foil, which can constantly offset Li loss during cycling and then mask poor cycling performance,3,10 even in the case of Li–O2 cells with TEGDME-based electrolytes.27–29
Therefore, it is especially important to quantify the decomposition reactions in a porous carbon positive electrode under more practical conditions of less electrolyte amount and high areal capacity without interference from Li metal negative electrode. We have examined reaction products in a porous carbon positive electrode by using a two-compartment cell design, where anode and cathode compartments were separated by a solid-state Li+ conductor to eliminate possible interference from the reactions at Li metal negative electrode.30 Because the monitoring the gas consumed/produced during the operation is nearly the only way to determine the CE of the O2 electrode, we used on-line gas analysis as well as pressure change measurements31 for understanding parasitic reactions coming from electrolyte decomposition.
The proprietary porous carbon sheet was cut into a disc (16 mm ϕ) and dried at 120 °C under vacuum for 12 hours. Then, 80 μl of the electrolyte was impregnated into the porous carbon electrode at 40 °C under vacuum and the extra electrolyte was wiped off by a filtration paper. The remained electrolyte in the porous carbon electrode was 60 μl.
On-line mass spectroscopy analysis was carried out by the Canon Anelva Quadrupole Mass Spectrometer M-401GA-DM. After discharge, the remaining O2 in the cell was flushed out for 3 minutes by switching the inlet gas to He (50 ml min−1), and then He flow was set to 5 ml min−1. A part of the outlet gas was introduced through a capillary tube (internal diameter: 0.05 mm ϕ, length: 2 m) into MS to analyze the evolved gases during charge as shown in Fig. 1.
The decomposition products in gas phase were adsorbed by seven pieces of Agilent J&W HP-PLOT Q columns (inner diameter: 0.53 mm ϕ, length: 20 mm) packed parallel in a 1/8′′ stainless tube cartridge every one hour. Each sample cartridge was set inside a thermal separation probe (TSP), and the desorbed gases at 250 °C were analyzed by the Agilent 5977C GC/MSD system equipped with a VF-WAXms column.
The decomposition products in liquid phase was analyzed by liquid chromatography analysis by the Waters Acquity H-class Ultra High Pressure Liquid Chromatography (UPLC) system coupled with a HSS T3 column and a Xevo G2-S QTof mass spectrometer.
The consumed/produced O2 was estimated by ideal gas law from the pressure change in the closed cell (internal volume: 25 ml) equipped with a pressure sensor, Keyence AP44. After filling O2 of about 0.13 MPa, the pressure change was monitored during cycling at 22 ± 0.1 °C.
Most researchers have not been concerned about the amounts of Li metal electrode and liquid electrolyte, when they determined cycle life of Li–O2 cells, even though these amounts are the important factors to determine not only energy density but also cycle life. Almost all studies so far have been carried out using a thick Li foil (100–500 μm thick). Because the equivalent weight of Li and graphite are 3860 and 372 mA h g−1, respectively, the capacity ratio of negative to positive electrodes (N/P ratio) should be at least less than 3860/372 ≒ 10 to keep the advantage over graphite electrodes. When the areal capacity of the Li metal anode is set to 4 mA h cm−2 (our standard experiment condition for the positive electrode), the thickness of the Li metal is calculated to be about 20 μm.
On the other hand, the electrolyte amount has a more significant influence on the energy density than the Li metal thickness owing to the larger mass density of the electrolyte (1.16 g cm−3) than that of Li metal (0.53 g cm−3). The ratio of the electrolyte volume to the total pore volume of cell components is an important parameter, however, the ratio of electrolyte weight to cell capacity (E/C, g A h−1) is empirically used to represent the electrolyte amount in LIBs.10 The E/C ratio in our experiments is 10 g A h−1, which is much smaller than those of previous studies (E/C ≥ 50 g A h−1, except ref. 13) as listed in Table 1. Only 5 cycles were obtained at 0.4 mA cm−2 (cut off: 4 mA h cm−2, 571 mA h g−1-carbon) as shown in Fig. 2a. While stable 18 cycles were achieved when the areal capacity was decreased to half by setting a current density at 0.2 mA cm−2 as shown in Fig. 2b, where E/C is 20 g A h−1.
Capacity (mA h cm−2) | Electrolyte amount (mg cm−2) | Carbon loading (mg cm−2) | E/C (g A h−1) | Specific capacity (mA h g−1-carbon) | Li thickness (μm) | Cycle life (@mA cm−2) | Ref. |
---|---|---|---|---|---|---|---|
a An assumed amount for coin or Swagelok-type cells.b 0.4 M. | |||||||
4 | 41 | 7 | 10 | 571 | 200 | 5 (0.4) | This work |
2 | 41 | 7 | 20 | 286 | 200 | 18 (0.2) | This work |
13.5 | 41 | 14 | 3 | 938 | 160 | 2 (0.15) | 13 |
9.7 | 41 | 14 | 4 | 679 | 160 | 3 (0.15) | 13 |
6.7 | 41 | 14 | 6 | 467 | 160 | 4 (0.15) | 13 |
3.4 | 41 | 14 | 12 | 236 | 160 | 8 (0.15) | 13 |
1 | 50a | 1 | 50 | 1000 | 160 | 40 (0.1) | 13 |
0.3 | 51 | 0.6 | 171 | 500 | ? | 20 (0.2) | 17 |
0.4 | 50a,b | 0.8 | 125 | 500 | ? | 250 (0.08) | 18 |
0.25 | 50a | 0.5 | 200 | 500 | ? | 40 (0.125) | 19 |
0.5 | 50a | 1 | 100 | 500 | 500 | 15 (0.2) | 20 |
1 | 50a | 1 | 50 | 1000 | 450 | 40 (0.2) | 21 |
0.5 | 50a | 0.5 | 100 | 1000 | 300 | 10 (0.1) | 22 |
1.25 | 189 | 1 | 151 | 1250 | ? | 2 (0.075) | 23 |
Fig. 2 Discharge/charge curves of the Li–O2 cells with 1 M LiTFSI/TEGDME under O2 flow shown in Fig. 1. Discharge/charge current densities are (a) 0.4 mA cm−2, (b) 0.2 mA cm−2, and (c) 0.2 mA cm−2, without a solid-state Li+ conductor in cell assembly. |
Our experimental conditions shown in the first and second lines in Table 1, correspond to energy densities of about 170 and 90 W h kg−1, respectively, for a complete cell without a solid-state Li+ conductor based on our simulation (N/P = 2.5).10 On the other hand, those of previous studies (except ref. 13) in Table 1 are less than 25 W h kg−1. The amount of electrolyte added to a coin or Swagelok-type cells is rarely provided in the literature, it was assumed 85 μl of electrolyte will fill the 2032 coin cell space. In order to achieve a practical energy density of 500 W h kg−1, the E/C ratio should be less than 1.5 g A h−1 at an areal capacity of 6 mA h cm−2 and a N/P ratio of 1.5 without a solid-state Li+ conductor based on our simulation.10 Therefore, it is very important to quantify the TEGDME decomposition to develop more stable solvents, which enable to decrease E/C ratio further (a lean electrolyte condition).
The main feature in Fig. 2b is a flat plateau at 2.7 V on discharge (after correcting the iR loss by the solid-state Li+ conductor as discussed below) after the first cycle and a gradual increase during the second half of the charge cycle, which is a combined result from both by-product accumulation and its insulating nature. It is noteworthy that the discharge potential in the first cycle quickly drops rapidly at the start of discharge, whereas those in subsequent cycles becomes more gradual. The discharge potential changes little from the second cycle, however, the charge potential during subsequent cycles changes significantly. The same experiment without the solid-state Li+ conductor was conducted to know its effect as shown in Fig. 2c, where only 5 cycles were obtained. The existence of the solid-state Li+ conductor enhanced the cycle life by removing a factor of the parasitic reactions with Li metal negative electrode, although about 1 V/mA cm−2 polarization (iR loss) was imposed both for discharge and charge potentials by the 180 μm thick solid-state Li+ conductor.
2Li2CO3 → 2CO2 + O2 + 4Li+ + 4e− | (6) |
Fig. 3 On-line GC analysis during discharge/charge cycling of the Li–O2 cell with 1 M LiTFSI/TEGDME under O2 flow at 0.2 mA cm−2. r, d, and c denote rest, discharge, and charge, respectively. |
To make a quantitative analysis of H2O and CO2 during charge, on-line mass spectroscopy analysis was carried out. After discharge, the remaining O2 in the cell was flushed out by switching the inlet gas to He, so that the evolved gases during charge can be analyzed. Again, we have observed negligible H2O formation during discharge under O2 atmosphere and gradual increase of H2O during charge under He atmosphere as shown in Fig. 4. The evolution of H2O and CO2 started from about 3.1 and 3.7 V (after correcting iR loss) on the first charge, respectively. Almost the same curves were reproduced at 0.4 mA cm−2 as shown in Fig. 5a. By using isotope labeled 18O2 (purity ≥ 98%), it was proved that the oxygen atom in H2O and CO2 are mainly originated from introduced O2 during discharge as shown in Fig. 5b. However, the evolution of the scrambled C16,18O2 indicates that the oxygen atom partly comes from the solvent decomposition as reported before.31 Since the behaviors of C16,18O2 and C16O2 seems different from that of C18O2 during 8 hours before the rapid CO2 generation, it may contain a small amount of the organic fragments with m/z = 46 and 44 in C16,18O2 and C16O2 curves in Fig. 5b, respectively. Therefore, integrated CO2 amount in Fig. 4 was corrected using the ratio C18O2:C16,18O2:C16O2 = 61:35:4.
The evolved O2 was calculated to be 73% expected form the charge amount (O2/2e− = 0.73) by integrating O2 generation curve. The parasitic reactions to afford H2O and CO2 were calculated to be 7% and 8%, respectively. The remaining 12% of the charge amount was consumed for unknown by-products including incomplete yield of Li2O2 during discharge. On the third charge, the evolved O2 decreased to 58% and the parasitic reactions to afford H2O and CO2 increased to 9% and 14%, respectively. The evolution of CO2 started from about 3.5 V (after correcting iR loss) earlier than 3.7 V on the first charge.
The comparison in decay curves of H2O between Fig. 3 (0.2 mA cm−2, 2 ml min−1 O2 flow) and Fig. 4 (0.2 mA cm−2, 5 ml min−1 He flow) certainly proves the consumption of H2O during discharge. This new observation might become possible using the two-compartment cell, because H2O is lost by the reaction of Li metal negative electrode without the solid-state Li+ conductor.
The reason why water is consumed during discharge is unclear at present. The possibility is a protonation of Li2O2 or LiO2 in eqn (7) and (8), respectively. However, these protonation by water is thermodynamically unfavorable due to the very high pKa (≈33) of water.30,33 However, the quantitative reaction between the Li2O2 formed electrochemically on carbon electrodes and water (eqn (7)) was used for a photometric analysis (DIN 38409-15)30 or an iodometric titration for H2O2.34 Furthermore, if these reactions are followed by the disproportionation reaction, the net reactions (eqn (9) and (10)) become thermodynamically favorable.33,35 Therefore, it is reasonable to consider that the water produced during charge reacts with the formed Li2O2 or LiO2 during discharge, which might be one of the reasons for incomplete yield of Li2O2. The formation of LiOH has been reported,23,36,37 and its constant accumulation in the carbon electrode is considered as one of reasons for the poor rechargeability. Because the removal of LiOH needs a little bit higher potential (4.5 V vs. Li/Li+)35 than that of Li2CO3 (4.3 V,35 3.8–4.2 V38)). The water effect on the nonaqueous Li–O2 technology is still ambiguous.39
Li2O2 + 2H2O → H2O2 + 2LiOH | (7) |
LiO2 + H2O → HO2 + LiOH | (8) |
2Li2O2 + 2H2O → 4LiOH + O2 | (9) |
2LiO2 + H2O → LiOOH + LiOH + O2 | (10) |
The pressure change was monitored to provide the amounts of O2 consumed during discharge and evolved during charge based on the ideal gas law. The results obtained from the closed cell could deviate from those obtained from the flow cell as cycled, because by-products accumulated inside the cell influence the reaction process. Therefore, we adopted the pressure measurement only for the first 2 cycles as shown in Fig. 6a. Fig. 6b shows the O2 efficiency for discharge and charge. If the ideal reaction (eqn (4)) exclusively occurs, the O2 efficiency (O2/2e−) should be 1 both for discharge and charge. The O2 efficiency for the first discharge was 0.92, meaning O2 consumption was 8% lower than the ideal, and hence, parasitic reactions other than Li2O2 formation occurred. In the similar way, the O2 efficiency for the first charge was 0.77, meaning O2 evolution was 23% lower than the ideal. This value deviates a little from that obtained by on-line MS analysis (0.73). These O2 efficiencies for the first discharge and charge are relatively comparable with the data reported at different conditions (0.92 and 0.64, respectively).22
Fig. 6 The change of (a) pressure and (b) O2 efficiency of the Li–O2 cell with 1 M LiTFSI/TEGDME during cycles at 0.2 mA cm−2. Potential profile is added as a dimmed line for reference. |
We have observed a short plateau at the very beginning of the second discharge as shown in Fig. 6a, where some electrochemical reaction without O2 consumption occurred. This parasitic reaction accounted for 7% of the discharge amount, and it gradually increased as cycled.
The results summarized in Table 2 clearly show parasitic reactions to unknown by-products increased drastically as cycled. The O2 efficiency for the third discharge was obtained by the same pressure measurement, where the gas phase was purged out by O2 at 5 ml min−1 for 30 min after the second cycle. The total electric charge consumed for parasitic reactions were 35 and 59% at the first and the third cycle, respectively.
Cycle no. | Discharge (ORR) | Charge (OER) | ||||||
---|---|---|---|---|---|---|---|---|
Li2O2 formation | Unknown w/o O2 | Unknown w/O2 | Unknown w/o O2 | O2 evolution | H2O evolution | CO2 evolution | Li2O2 loss | |
1 | 92 | 0 | 8 | 8 | 73 | 7 | 8 | 4 |
3 | 83 | 7 | 10 | 17 | 58 | 9 | 14 | 2 |
The decomposition products in liquid phase were also analyzed by LC/MS. We have observed gradual increase of methylene oxide chain derivatives, CH3O(CH2CH2O)p(CH2O)(CH2CH2O)qCH3 (p, q ≥ 0, p + q = 2–5) as well as larger glymes (n = 5, 6) during 5 cycles as shown in Fig. 8.
Fig. 8 LC/MS analysis for by-products derived from TEGDME after 5 cycles. Relative amount against TEGDME. |
Based on the observed by-products, possible mechanism for the TEGDME decomposition is proposed in Fig. 9. The decomposition of TEGDME (1) can be initiated by hydrogen atom abstraction by singlet oxygen (1O2) or superoxide radical anion (O2˙−). Because the stability of alkyl radicals is in the order of tertiary > secondary > primary, hydrogen atoms on ethylene groups (3) are susceptible to hydrogen abstraction than those on terminal methyl groups (2) as was reported for ethylene glycol dimethyl ether (monoglyme).40 The radical thus formed (3) may undergo β-scission (C–O scission) to give other radicals (5, 4′) and unsaturated fragments (6, 7).41 Actually, unsaturated compounds (6; m = 1, and 7; m = 0) were detected. The resultant radicals (4′, 5′) may undergo recombination by radical coupling to generate various glymes (1′) comprising from monoglyme (n = 1), diglyme (n = 2), triglyme (n = 3), and other oligomers, which were detected up to n = 6 after 5 cycles. The hydrogen abstraction from terminal methyl groups (2) also seems to happen,41 because various methylene oxide chain derivatives (8; p + q = 2–5) were detected, which can be formed by the similar radical coupling (2′, 5′). Then, the same reactions are repeated for various glymes (1′) and methylene oxide chain derivatives (8) to produce a variety of homologues.
Besides the decomposition mechanism proposed for monoglyme,40,42,43 we would like to point out that formate esters (9) might be produced by the ˙OH radical initiated oxidation of vinyl ethers (6),44 where ˙OH radicals can be generated by singlet oxygen and water.45 The degradation reactions of the aldehydes (7) leading to formic/acetic acids (or formate/acetate) are complex to describe. Any alkyl radicals (2, 3, 4) can lead to ether peroxides, which readily undergo oxidative decomposition analogous to combustion reactions.
The decomposition reactions shown in Fig. 9 are possible both for discharge and charge. H2O is generated from about 3.1 V (after correcting iR loss) by electrochemical oxidation of organic fragments, and accumulated formate/acetate is electrochemically oxidized from about 3.5 V (after correcting iR loss) to generate CO2 during charge according to eqn (11).46 The H2O accompanied during charge is successively accumulated, which can alter the reaction process as represented in eqn (9) and (10), and also cause the hydrolysis of glymes and other organic intermediates. It is considered that ethylene glycol methyl ether and the unidentified alcohol can be produced by hydrolysis. Li2CO3 can be formed by not only the mirror process of eqn (6), but also eqn (12).
RCOO− → CO2 + R˙ + e− (R = H, CH3) | (11) |
2LiOH + CO2 → Li2CO3 + H2O | (12) |
We have successfully envisaged the material balance of the Li–O2 cell with 1 M LiTFSI/TEGDME at 0.2 mA cm−2 as listed in Table 2. 8% of the discharge amount was assigned for parasitic reactions other than Li2O2 formation during the first discharge, which can be attributed to the reaction between (1O2 and/or O2˙−) and (TEGDME and/or its fragments in Fig. 9). On the other hand, 8% of the charge amount was assigned for parasitic reactions other than gas evolution, which can be attributed to the reaction between (1O2 and/or O2˙−) and (TEGDME and/or its fragments in Fig. 9) including the electrochemical oxidation of by-products during the first discharge. 4% of the charge amount can be assigned to the loss of Li2O2, probably through LiOH formation discussed before. The parasitic reactions without O2 consumption at the very beginning of the discharge from the second cycle can be attributed to the electrochemical reduction of the oxidized moieties during charge.
2RM− → 2RM + 2e− | (13) |
2RM + Li2O2 → 2RM− + 2Li+ + O2 | (14) |
We have used 0.5 M LiTFSI + 0.5 M LiNO3 + 0.2 M LiBr/TEGDME electrolyte, where LiNO3 and LiBr are considered to function as RM−/RM = NO2−/NO2 starting from 3.6 V48 and (3Br−)/Br3− from 3.5 V vs. Li/Li+,49 respectively. Fig. 10 shows the discharge/charge curves at 0.4 mA cm−2 for the first 10 cycles. A flat charge plateau was observed at 3.5 V (after correcting iR loss, 90 μm thick solid-state Li+ conductor). This potential is ascribed to the redox potential of electrochemical oxidation of Br− to Br3−. The initial shoulder in the subsequent discharge cycles is attributed to the electrochemical reduction of Br3− to Br−, which gradually decreases as cycled. The charge potential during the first half of the subsequent charge cycles also gradually decreases, which is an indication of the different chemical process other than these redox mediators, approaching the behavior of 1 M LiTFSI/TEGDME. Owing to the suppression of the oxidative decomposition of TEGDME and/or its fragments, the cycle life was extended to 15 cycles at 0.4 mA cm−2.
Fig. 10 Discharge/charge curves of the Li–O2 cells with 0.5 M LiTFSI + 0.5 M LiNO3 + 0.2 M LiBr/TEGDME under O2 flow at 0.4 mA cm−2. |
Irrespective of the presence of redox mediators, the same behavior was observed for H2O and CO2 by operando on-line gas chromatography analysis as shown in Fig. 11. We have observed again the gradual increase of H2O during charge and its gradual decrease during discharge. On-line mass spectroscopy analysis in Fig. 12 revealed that the evolved O2 was improved to 88% expected form the charge amount (O2/2e− = 0.88). The parasitic reactions to afford H2O and CO2 were dramatically decreased to 3% and 1%, respectively. The remaining 8% of the charge amount was consumed for unknown by-products including incomplete yield of Li2O2 during discharge. The evolution of H2O and CO2 started from about 3.4 V and 3.6 V (after correcting iR loss) on the first charge, respectively. On the third charge, the evolved O2 decreased to 77% and the parasitic reactions to afford H2O and CO2 increased to 5% and 9%, respectively. The evolution of CO2 started at almost the same potential with that on the first charge.
The O2 efficiency calculated from the pressure change for the first discharge was remarkably improved to 0.96 (O2/2e− = 0.96). A short plateau at the very beginning of the second discharges corresponds to 6% of the discharge amount, where some electrochemical reactions without O2 consumption occurred.
The results summarized in Table 3 clearly show the suppression of parasitic reactions by the utilization of redox mediators. The yield of Li2O2 for the third discharge was estimated from the assumption that a side reaction with Li2O2 loss is the same as 1 M LiTFSI/TEGDME system. The total electric charge consumed for parasitic reactions were 16 and 30% at the first and the third cycle, respectively.
Fig. 13 The balance of total electric charge for the Li–O2 cells with (a) 1 M LiTFSI/TEGDME at 0.2 mA cm−2, and (b) 0.5 M LiTFSI + 0.5 M LiNO3 + 0.2 M LiBr/TEGDME at 0.4 mA cm−2. |
Average TEGDME consumption rates from the second cycle to the fifth cycle were about 0.15 and 0.09 g A h−1 for (a) 1 M LiTFSI/TEGDME at 0.2 mA cm−2 and (b) 0.5 M LiTFSI + 0.5 M LiNO3 + 0.2 M LiBr/TEGDME at 0.4 mA cm−2, respectively. Thus, dry-up of electrolytes is expected to be after 133 and 111 cycles, respectively, which are far from the observed cycle life (18 and 15 cycles). The cause of the early failure is the by-product accumulation in the carbon electrode, which results in large potential polarization including deficient O2 and Li+ by pore clogging. This pore clogging was confirmed by a scanning electron microscope, Fourier transform infrared spectroscopy and impedance spectroscopy in Fig. S2–S4 given in the ESI.† This behavior in the O2 electrode is similar to the case, when the cycle life is limited by the cell polarization due to the continuous irreversible electrolyte consumption forming a mossy SEI layer on the Li metal electrode of Li/LiNi0.6Co0.2Mn0.2O2 cells.51 Fig. 14 shows a correlation between E/C and cycle life, although the cited data from ref. 13 include some influence from Li electrode. It is apparent that the E/C ratio is a good parameter to correlate with the cycle life at less electrolyte amount condition.
Fig. 14 Correlation between electrolyte amount (E/C) and cycle life; (a) 1 M LiTFSI/TEGDME at 0.8, 0.4, 0.2 mA cm−2, (b) 0.5 M LiTFSI + 0.5 M LiNO3 + 0.2 M LiBr/TEGDME at 0.4 mA cm−2, (c) ref. 13 at 0.15 mA cm−2. |
Although the utilization of redox mediators enabled to increase 2 times magnitude in the discharge/charge current density (i.e. areal capacity) while keeping a similar cycle life, it is still far to achieve satisfactory cycle life due to the short life of the redox mediators. Therefore, it is mandatory to find much more stable solvent against reactive oxygen species, which enables to operate under a lean electrolyte condition depicted as a yellow region in Fig. 14.
Furthermore, we obtained the following new information about the decomposition of TEGDME. (1) Produced H2O is consumed during discharge, presumably by the reaction with Li2O2 and/or LiO2. (2) CH3O(CH2CH2O)nCH3 and CH3O(CH2CH2O)p(CH2O)(CH2CH2O)qCH3 are produced by radical recombination, which undergo repeated hydrogen atom abstraction by 1O2 and/or O2˙− similar with TEGDME. This ether regeneration mechanism might consume more electric amounts to show the lower O2 efficiency but relatively tough cycle life.
Footnote |
† Electronic supplementary information (ESI) available. See DOI: 10.1039/d0ra07924c |
This journal is © The Royal Society of Chemistry 2020 |