Facilitating sustainable oxygen-redox chemistry for P3-type cathode materials for sodium-ion batteries
- Authors
- Jo, J.H.; Kim, H.J.; Choi, J.U.; Voronina, N.; Lee, K.-S.; Ihm, K.; Lee, H.-K.; Lim, H.-D.; Kim, H.; Jung, H.-G.; Chung, K.Y.; Yashiro, H.; Myung, S.-T.
- Issue Date
- 2022-04
- Publisher
- Elsevier BV
- Citation
- Energy Storage Materials, v.46, pp.329 - 343
- Abstract
- Herein, the surface of the P3-Na0.6[Mn0.6Co0.2Mg0.2]O2 cathode material is fortified by introducing an ionic-conducting sodium-phosphate nanolayer (NaPO3, ?10-nm thickness). This layer facilitates Na+-ion diffusion owing to its sufficiently high ionic conductivity (?10?6 S cm?1). Moreover, the NaPO3 coating layer prevents the precipitation of surface byproducts generated from reaction with the electrolyte. The NaPO3-coated P3-Na0.6[Mn0.6Co0.2Mg0.2]O2 electrode can thus retain over 80% of the first capacity after 200 cycles not only at 0.1C but also at a high rate (5C), with a capacity retention of 88% after 300 cycles. Reversible transition-metal and oxygen redox are evidenced by X-ray absorption near-edge spectroscopy, X-ray photoelectron spectroscopy, time-of-flight secondary-ion mass spectroscopy, and operando differential electrochemical mass spectroscopy, which reveal mitigated surface-byproduct formation. These findings demonstrate the possibility of the use of oxygen redox for high-energy SIBs, ensuring long term cyclability. ? 2022 Elsevier B.V.
- Keywords
- ANIONIC REDOX; ELECTRODE MATERIAL; HIGH-CAPACITY; NA-EXCESS; PERFORMANCE; P2-TYPE; GLASSES; PHASE; LIFE; Battery; Cathode; NaPO3; Oxygen redox; P3-Na0.6[Mn0.6Co0.2Mg0.2]O2; Sodium
- ISSN
- 2405-8297
- URI
- https://pubs.kist.re.kr/handle/201004/115496
- DOI
- 10.1016/j.ensm.2022.01.028
- Appears in Collections:
- KIST Article > 2022
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