Correlation of phase (in)stability and lattice misfits for high-power-density Na cathodes. Issue 10 (23rd December 2022)
- Record Type:
- Journal Article
- Title:
- Correlation of phase (in)stability and lattice misfits for high-power-density Na cathodes. Issue 10 (23rd December 2022)
- Main Title:
- Correlation of phase (in)stability and lattice misfits for high-power-density Na cathodes
- Authors:
- Yoon, Sangho
Murugesan, Varun Karthik
Lee, Jaewoon
Kim, Taehyung
Lee, Chang Woo
Kim, Duho - Abstract:
- Abstract : The correlation between phase (in)stability and lattice misfit is investigated to provide an in-depth understanding of the phase transitions using the "directional lattice misfit" concept in achieving high-power-density cathodes. Abstract : The correlation between phase (in)stability and lattice misfit is herein investigated to provide an in-depth understanding of the phase transitions using the intriguing concept denoted as the "directional lattice misfit" in achieving high-power-density cathodes based on Na x [Ni1/4 Mn3/4 ]O2 (NM13) and Na x [Ni1/3 Mn2/3 ]O2 (NM12) Na oxide models. The binary Ni–Mn cathodes are similarly characterized using various experimental analysis methods; however, their electrochemical charge/discharge curves reveal completely different pathways. Upon cycling, the former exhibits a smooth profile regarded as a solid–solution reaction, whereas the latter exhibits a stair-like structure, thereby suggesting multiple phase transitions during Ni redox reactions below 4.0 V. Interestingly, the cycling retention of NM13 is lower than that of NM12 at 0.1C, which is not governed by the general concept that the phase stability increases the electrochemical cycling performance. In contrast, NM13 exhibits distinctly higher cycling retention compared with NM12 in higher current density modes. Using first-principle calculations, the intriguing reverse trend depending on the materials is theoretically understood by the "directional lattice misfit"Abstract : The correlation between phase (in)stability and lattice misfit is investigated to provide an in-depth understanding of the phase transitions using the "directional lattice misfit" concept in achieving high-power-density cathodes. Abstract : The correlation between phase (in)stability and lattice misfit is herein investigated to provide an in-depth understanding of the phase transitions using the intriguing concept denoted as the "directional lattice misfit" in achieving high-power-density cathodes based on Na x [Ni1/4 Mn3/4 ]O2 (NM13) and Na x [Ni1/3 Mn2/3 ]O2 (NM12) Na oxide models. The binary Ni–Mn cathodes are similarly characterized using various experimental analysis methods; however, their electrochemical charge/discharge curves reveal completely different pathways. Upon cycling, the former exhibits a smooth profile regarded as a solid–solution reaction, whereas the latter exhibits a stair-like structure, thereby suggesting multiple phase transitions during Ni redox reactions below 4.0 V. Interestingly, the cycling retention of NM13 is lower than that of NM12 at 0.1C, which is not governed by the general concept that the phase stability increases the electrochemical cycling performance. In contrast, NM13 exhibits distinctly higher cycling retention compared with NM12 in higher current density modes. Using first-principle calculations, the intriguing reverse trend depending on the materials is theoretically understood by the "directional lattice misfit" concept of an increase in the thermodynamic phase instability induced by phase transitions upon desodiation. The formation energies suggest that the biphasic and monophasic reactions underpin the different charge/discharge profiles of NM13 and NM12, thereby indicating that thermodynamic instability leads to the generation of a two-type lattice misfit, depending on the crystallographic directions. Based on the correlation between thermodynamics and the lattice misfit, the structural effect accounts for the cycling retention relying on the current density mode and it can potentially provide a universal design strategy for high-power-density sodium and lithium-ion batteries. … (more)
- Is Part Of:
- Journal of materials chemistry. Volume 11:Issue 10(2023)
- Journal:
- Journal of materials chemistry
- Issue:
- Volume 11:Issue 10(2023)
- Issue Display:
- Volume 11, Issue 10 (2023)
- Year:
- 2023
- Volume:
- 11
- Issue:
- 10
- Issue Sort Value:
- 2023-0011-0010-0000
- Page Start:
- 5104
- Page End:
- 5111
- Publication Date:
- 2022-12-23
- Subjects:
- Materials -- Research -- Periodicals
Chemistry, Analytic -- Periodicals
Environmental sciences -- Research -- Periodicals
543.0284 - Journal URLs:
- http://pubs.rsc.org/en/journals/journalissues/ta ↗
http://www.rsc.org/ ↗ - DOI:
- 10.1039/d2ta07495h ↗
- Languages:
- English
- ISSNs:
- 2050-7488
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 5012.205100
British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 26156.xml