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1. Boosting K+‐Ionic Conductivity of Layered Oxides via Regulating P2/P3 Heterogeneity and Reciprocity for Room‐Temperature Quasi‐Solid‐State Potassium Metal Batteries.

2. MgB2Se4 Spinels (B = Sc, Y, Er, Tm) as Potential Mg‐Ion Solid Electrolytes – Partial Ionic Conductivity and the Ion Migration Barrier.

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3. Dualism of Remarkable Magnesium Ion Conduction with Low Activation Energy over a Wide Temperature Range versus Limited Stability of the Hybrid Composite Electrolyte Mg‐MOF‐74/MgX2/Propylene Carbonate.

4. Emerging Halide Solid Electrolytes for Sodium Solid‐State Batteries: Structure, Conductivity, Paradigm of Applications.

5. Selective Lattice Doping Enables a Low‐Cost, High‐Capacity and Long‐Lasting Potassium Layered Oxide Cathode for Potassium and Sodium Storage.

6. High Entropy Materials for Reversible Electrochemical Energy Storage Systems.

7. In Situ Observation of Room‐Temperature Magnesium Metal Deposition on a NASICON/IL Hybrid Solid Electrolyte.

8. Binary Metallic CuCo5S8 Anode for High Volumetric Sodium‐Ion Storage.

9. To Be or Not to Be – Is MgSc2Se4 a Mg‐Ion Solid Electrolyte?

10. Autophagy blockage and lysosomal dysfunction are involved in diallyl sulfide‐induced inhibition of malignant growth in hepatocellular carcinoma cells.

11. High‐Entropy Solid‐State Na‐Ion Conductor for Stable Sodium‐Metal Batteries.

12. Ionic Liquid‐Incorporated Metal‐Organic Framework with High Magnesium Ion Conductivity for Quasi‐Solid‐State Magnesium Batteries.

13. Downregulation of estrogen receptor‐α36 expression attenuates metastasis of hepatocellular carcinoma cells.

14. Estrogen receptor‐α36 is involved in diallyl sulfide‐induced inhibition of malignant growth of HepG2 and Huh7 hepatocellular carcinoma cells.

15. The electrolyte comprising more robust water and superhalides transforms Zn‐metal anode reversibly and dendrite‐free.

17. Boosting Zn2+ and NH4+ Storage in Aqueous Media via In‐Situ Electrochemical Induced VS2/VOx Heterostructures.

18. Self‐Assembled FeSe2 Microspheres with High‐Rate Capability and Long‐Term Stability as Anode Material for Sodium‐ and Potassium‐Ion Batteries.

20. A High‐Rate Aqueous Proton Battery Delivering Power Below −78 °C via an Unfrozen Phosphoric Acid.

21. An Aqueous Dual‐Ion Battery Cathode of Mn3O4 via Reversible Insertion of Nitrate.

22. Fabrication of Hierarchical Potassium Titanium Phosphate Spheroids: A Host Material for Sodium‐Ion and Potassium‐Ion Storage.

23. Fast Potassium Storage in Hierarchical Ca0.5Ti2(PO4)3@C Microspheres Enabling High‐Performance Potassium‐Ion Capacitors.

24. Lithium-Rich Layered Oxide Li1.18Ni0.15Co0.15Mn0.52O2 as the Cathode Material for Hybrid Sodium-Ion Batteries.

26. Band Engineering of Mn‐P Alloy Enables HER‐suppressed Aqueous Manganese Ion Batteries.

27. Layered P2‐Type K0.44Ni0.22Mn0.78O2 as a High‐Performance Cathode for Potassium‐Ion Batteries.

28. From Crystalline to Amorphous: An Effective Avenue to Engineer High‐Performance Electrode Materials for Sodium‐Ion Batteries.