[1] A MA, Z YIN, J WANG et al. Al-doped NaNi1/3Mn1/3Fe1/3O2 for high performance of sodium ion batteries. Ionics, 26, 1797(2020).
[2] D ZHOU, C ZENG, J XIANG et al. Review on Mn-based and Fe-based layered cathode materials for sodium-ion batteries. Ionics, 28, 2029(2022).
[3] H R YAO, L ZHENG, S XIN et al. Air-stability of sodium-based layered-oxide cathode materials. Science China-Chemistry, 65, 1076(2022).
[4] Z LIU, C ZHOU, J LIU et al. Phase tuning of P2/O3-type layered oxide cathode for sodium ion batteries via a simple Li/F co-doping route. Chemical Engineering Journal, 431, 134273(2022).
[5] M LI, CJ JAFTA, L GENG et al. Correlation of oxygen anion redox activity to in-plane honeycomb cation ordering in NaxNiyMn1-yO2 cathodes. Advanced Energy and Sustainability Research, 3, 2200027(2022).
[6] J LI, H LI, Q HUANG et al. Study on the mechanism of the influence of doping on the properties of cathode materials of sodium ion batteries. Progress in Chemistry, 34, 857(2022).
[7] Y X CHANG, L YU, X XING et al. Ion substitution strategy of manganese-based layered oxide cathodes for advanced and low- cost sodium ion batteries. Chemical Record, 6, 202200122(2022).
[8] Y X YIN, P F WANG, Y YOU et al. An O3-type NaNi0.5Mn0.5O2 cathode for sodium-ion batteries with improved rate performance and cycling stability. Journal of Materials Chemistry A, 4, 17660(2016).
[9] L TAN, Q WU, Z LIU et al. Ti-substituted O3-type layered oxide cathode material with high-voltage stability for sodium-ion batteries. Journal of Colloid and Interface Science, 622, 1037(2022).
[10] D D YUAN, Y X WANG, Y L CAO et al. Improved electrochemical performance of Fe-substituted NaNi0.5Mn0.5O2 cathode materials for sodium-ion batteries. ACS Applied Materials Interfaces, 16, 8585(2015).
[11] X G YUAN, Y J GUO, L GAN et al. A universal strategy toward air-stable and high-rate O3 layered oxide cathodes for Na-ion batteries. Advanced Functional Materials, 32, 2111466(2022).
[12] Q ZHANG, Z WANG, X LI et al. Mitigating the voltage fading and air sensitivity of O3-type NaNi0.4Mn0.4Cu0.1Ti0.1O2 cathode material via La doping. Chemical Engineering Journal, 43, 133456(2022).
[13] R FIELDEN, M N OBROVAC. Investigation of the NaNixMn1-xO2 (0≤x≤1) system for Na-ion battery cathode materials. Journal of the Electrochemical Society, 162, 453(2015).
[14] K MATHIYALAGAN, K KARUPPIAH, A PONNAIAH et al. Significant role of magnesium substitution in improved performance of layered O3-Na-Mn-Ni-Mg-O cathode material for developing sodium-ion batteries. International Journal of Energy Research, 46, 10656(2022).
[15] C ZHOU, L YANG, C ZHOU et al. Co-substitution enhances the rate capability and stabilizes the cyclic performance of O3-type cathode NaNi0.45-xMn0.25Ti0.3CoxO2 for sodium-ion storage at high voltage. ACS Applied Materials & Interfaces, 11, 7906(2019).
[16] Z CHENG, X Y FAN, L YU et al. A rational biphasic tailoring strategy enabling high-performance layered cathodes for sodium-ion batteries. Angewandte Chemie International Edition, 61, 17728(2022).
[17] K WALCZAK, A PLEWA, C GHICA et al. NaMn0.2Fe0.2Co0.2Ni0.2Ti0.2O2 high-entropy layered oxide experimental and theoretical evidence of high electrochemical performance in sodium batteries. Energy Storage Materials, 47, 10656(2022).
[18] Y DING, F DING, X RONG et al. Mg-doped layered oxide cathode for Na-ion batteries. Chinese Physics B, 31, 068201(2022).
[19] Q HUANG, Y FENG, L WANG et al. Structure modulation strategy for suppressing high voltage P3-O1 phase transition of O3-NaMn(0.5)Ni(0.5)O2 layered cathode. Chemical Engineering Journal, 431, 133454(2022).
[20] K WALCZAK, A PLEWA, C GHICA et al. NaMn0.2Fe0.2Co0.2Ni0.2Ti0.2O2 high-entropy layered oxide: experimental and theoretical evidence of high electrochemical performance in sodium batteries. Energy Storage Materials, 47, 500(2022).
[21] T SONG, L CHEN, D GASTOL et al. High-voltage stabilization of O3-type layered oxide for sodium-ion batteries by simultaneous tin dual modification. Chemistry of Materials, 34, 4153(2022).
[22] W TANG, E SANVILLE, G HENKELMAN. A grid-based Bader analysis algorithm without lattice bias. Journal of Physics Condensed Matter, 21, 084204(2009).
[23] E SANVILLE, S D KENNY, R SMITH et al. Improved grid-based algorithm for Bader charge allocation. Journal of computational chemistry, 28, 899(2007).
[25] Z XU, X GUO, J Z WANG et al. Restraining the octahedron collapse in lithium and manganese rich NCM cathode toward suppressing structure transformation. Advanced Energy Materials, 12, 2201323(2022).
[26] T R CHEN, T SHENG, Z G WU et al. Cu2+ dual-doped layer- tunnel hybrid Na0.6Mn1-xCuxO2 as a cathode of sodium-ion battery with enhanced structure stability, electrochemical property, and air stability. ACS Applied Materials & Interfaces, 12, 10147(2018).
[27] T FENG, L LI, Q SHI et al. Evidence for the influence of polaron delocalization on the electrical transport in LiNi0.4+xMn0.4-xCo0.2O2. Physical Chemistry Chemical Physics, 22, 2054(2020).
[28] I YADAV, S DUTTA, A PANDEY et al. Evolution of TiOx-SiOx nano-composite during annealing of ultrathin titanium oxide films on Si substrate. Ceramics International, 46, 19935(2020).
[29] Z SUN, X DENG, J J CHOI et al. Silicon surface passivation by laser processing a Sol-Gel TiOx thin film. ACS Applied Energy Materials, 1, 5474(2018).
[30] L YU, X X XING, S Y ZHANG et al. Cation-disordered O3-Na0.8Ni0.6Sb0.4O2 cathode for high-voltage sodium-ion batteries. ACS Applied Materials & Interfaces, 13, 32948(2021).
[31] M KOUTHAMAN, K KANNAN, P ARJUNAN et al. Layered O3-type Na9/10Cr1/2Fe1/2O2 as new cathode for rechargeable sodium-ion battery. Colloids and Surfaces A: Physicochemiacl and Engineering Aspects, 633, 127929(2022).
[32] H H RYU, G HAN, T Y YU et al. Enhanced cycling stability of O3-type Na[Ni0.5Mn0.5]O2 cathode through Sn addition for sodium-ion batteries. Journal of Physical Chemistry C, 125, 6593(2021).
[33] X MENG, D ZHANG, Z ZHAO et al. O3-NaNi(0.47)Zn(0.03)Mn(0.5)O2 cathode material for durable Na-ion batteries. Journal of Alloys and Compounds, 887, 161366(2021).
[34] D A ANANG, D S BHANGE, B ALI et al. New O3-type layer- structured Na0.80[Fe0.40Co0.40Ti0.20]O2 cathode material for rechargeable sodium-ion batteries. Materials (Basel), 14, 2363(2021).
[35] J LAMB, A MANTHIRAM. Surface-modified Na(Ni0.3Fe0.4Mn0.3)O2 cathodes with enhanced cycle life and air stability for sodium-ion batteries. ACS Applied Energy Materials, 4, 11735(2021).
[36] C CHEN, W HUANG, Y LI et al. P2/O3 biphasic Fe/Mn-based layered oxide cathode with ultrahigh capacity and great cyclability for sodium ion batteries. Nano Energy, 90, 106504(2021).
[37] Y M ZHENG, X B HUANG, X M MENG et al. Copper and zirconium codoped O3-type sodium iron and manganese oxide as the cobalt/nickel-free high-capacity and air-stable cathode for sodium-ion batteries. ACS Applied Materials & Interfaces, 13, 45528(2021).