[1] ETACHERI V, MAROM R, ELAZARI R,et al. Challenges in the development of advanced Li-ion batteries: a review. Energy & Environmental Science, 2011, 4(9): 3243. [2] LIU C, LI F, MA L P,et al. Advanced materials for energy storage. Advanced Materials, 2010, 22(8): E28. [3] XIAO B, WU G, WANG T, et al. High-entropy oxides as advanced anode materials for long-life lithium-ion batteries. Nano Energy, 2022, 95: 106962. [4] PATRA J, NGUYEN T X, TSAI C C,et al. Effects of elemental modulation on phase purity and electrochemical properties of Co-free high-entropy spinel oxide anodes for lithium-ion batteries. Advanced Functional Materials, 2022, 32(31): 2110992. [5] CHEN R, LUO R, HUANG Y,et al. Advanced high energy density secondary batteries with multi-electron reaction materials. Advanced Science, 2016, 3(11): 1600051. [6] ZOU B, ZHANG W, CUI Y,et al. Interfacial engineering for metal oxide/nitride nano-heterojunctions towards high-rate lithium-ion storage. Journal of Materials Chemistry A, 2022, 10(14): 7391. [7] LIU W, PANG Y, SHI Z, et al. Ultrafast kinetics in a PAN/MgFe2O4 flexible free-standing anode induced by heterojunction and oxygen vacancies. ACS Applied Materials & Interfaces, 2022, 14(9): 11575. [8] ZHANG Y, DONG P, ZHAO J,et al. Simple solution-combustion synthesis of Fe2TiO5 nanomaterials with enhanced lithium storage properties. Ceramics International, 2019, 45(9): 11382. [9] WANG D, JIANG S, DUAN C,et al. Spinel-structured high entropy oxide (FeCoNiCrMn)3O4 as anode towards superior lithium storage performance. Journal of Alloys and Compounds, 2020, 844: 156158. [10] ROST C M, SACHET E, BORMAN T,et al. Entropy-stabilized oxides. Nature Communications, 2015, 6: 8485. [11] ANISIMOV V I, ARYASETIAWAN F, LICHTENSTEIN A I.First-principles calculations of the electronic structure and spectra of strongly correlated systems: the LDA+U method.Journal of Physics: Condensed Matter, 1997, 9(4): 767. [12] GEORGE E P, RAABE D, RITCHIE R O.High-entropy alloys.Nature Reviews Materials, 2019, 4(8): 515. [13] LEI F, SUN Y, LIU K,et al. Oxygen vacancies confined in ultrathin indium oxide porous sheets for promoted visible-light water splitting. Journal of the American Chemical Society, 2014, 136(19): 6826. [14] GREINER M T, CHAI L, HELANDER M G,et al. Transition metal oxide work functions: the influence of cation oxidation state and oxygen vacancies. Advanced Functional Materials, 2012, 22(21): 4557. [15] WANG S, GAO Y, MIAO S, et al. Positioning the water oxidation reaction sites in plasmonic photocatalysts. Journal of the American Chemical Society, 2017, 139(34): 11771. [16] KWON H, YOON J S, LEE Y,et al. An array of metal oxides nanoscale hetero -n junctions toward designable and highly-selective gas sensors. Sensors and Actuators B: Chemical, 2018, 255: 1663. [17] ZHANG N, JIANG R.Interfacial engineering of metal/metal oxide heterojunctions toward oxygen reduction and evolution reactions.ChemPlusChem, 2021, 86(11): 1586. [18] SARKAR A, WANG Q, SCHIELE A,et al. High‐entropy oxides: fundamental aspects and electrochemical properties. Advanced Materials, 2019, 31(26): 1806236. [19] SHEN G, ZHANG R, PAN L, et al. Regulating the spin state of FeIII by atomically anchoring on ultrathin titanium dioxide for efficient oxygen evolution electrocatalysis. Angewandte Chemie International Edition, 2020, 59(6): 2313. [20] HENKELMAN G, ARNALDSSON A, JÓNSSON H. A fast and robust algorithm for Bader decomposition of charge density.Computational Materials Science, 2006, 36(3): 354. |