49 results on '"Bommier, Clement"'
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2. Internal structure – Na storage mechanisms – Electrochemical performance relations in carbons
3. Understanding Full-Cell Evolution and Non-chemical Electrode Crosstalk of Li-Ion Batteries
4. Self-activation of cellulose: A new preparation methodology for activated carbon electrodes in electrochemical capacitors
5. Predicting capacity of hard carbon anodes in sodium-ion batteries using porosity measurements
6. Chapter 2 Nanoporous Carbon for Capacitive Energy Storage
7. Impact of Non-Arrhenius Temperature Behavior on the Fast-Charging Capabilities of LiCoO2–Graphite Lithium-Ion Batteries
8. Understanding Adverse Effects of Temperature Shifts on Li-Ion Batteries: An Operando Acoustic Study
9. Operando Acoustic Monitoring of SEI Formation and Long-Term Cycling in NMC/SiGr Composite Pouch Cells
10. (Invited) Acoustic Detection of Unwanted Lithium Deposition in Lithium Ion Batteries
11. Sodium metal anodes for room-temperature sodium-ion batteries: Applications, challenges and solutions
12. Electrochemical Properties and Theoretical Capacity for Sodium Storage in Hard Carbon: Insights from First Principles Calculations
13. Toward Higher Capacities of Hydrocarbon Cathodes in Dual-Ion Batteries
14. Pure Hydrocarbon Cathodes for Dual-Ion Batteries – a Trend
15. A Tale of Two Fridges: Temperature Implications on Long Term Fading, Material Degradation, and Performance Recovery in Lithium-Ion Batteries
16. Mg-Ion Battery Electrode: An Organic Solid’s Herring Bone Structure Squeezed upon Mg-Ion Insertion
17. Electrolytes, SEI Formation, and Binders: A Review of Nonelectrode Factors for Sodium‐Ion Battery Anodes
18. Berichtigung: Hydronium‐Ion Batteries with Perylenetetracarboxylic Dianhydride Crystals as an Electrode
19. Corrigendum: Hydronium‐Ion Batteries with Perylenetetracarboxylic Dianhydride Crystals as an Electrode
20. Mg-Ion Battery Electrode: An Organic Solid’s Herringbone Structure Squeezed upon Mg-Ion Insertion
21. Identify the Removable Substructure in Carbon Activation
22. Mechanism of Na‐Ion Storage in Hard Carbon Anodes Revealed by Heteroatom Doping
23. Design Principles of Non-Graphitic Carbon Electrodes for Energy Storage
24. Insights on the Mechanism of Na-Ion Storage in Soft Carbon Anode
25. Innentitelbild: Hydronium-Ion Batteries with Perylenetetracarboxylic Dianhydride Crystals as an Electrode (Angew. Chem. 11/2017)
26. Inside Cover: Hydronium-Ion Batteries with Perylenetetracarboxylic Dianhydride Crystals as an Electrode (Angew. Chem. Int. Ed. 11/2017)
27. Hydronium‐Ion Batteries with Perylenetetracarboxylic Dianhydride Crystals as an Electrode
28. Hard carbon anodes of sodium-ion batteries: undervalued rate capability
29. Electrochemical Properties and Theoretical Capacity for Sodium Storage in Hard Carbon: Insights from First Principles Calculations.
30. Identify the Removable Substructure in Carbon Activation
31. New Paradigms on the Nature of Solid Electrolyte Interphase Formation and Capacity Fading of Hard Carbon Anodes in Na‐Ion Batteries
32. Battery Technology: New Paradigms on the Nature of Solid Electrolyte Interphase Formation and Capacity Fading of Hard Carbon Anodes in Na-Ion Batteries (Adv. Mater. Interfaces 19/2016)
33. High Capacity of Hard Carbon Anode in Na-Ion Batteries Unlocked by POx Doping
34. Anode Materials: Hard Carbon Microspheres: Potassium-Ion Anode Versus Sodium-Ion Anode (Adv. Energy Mater. 3/2016)
35. Na-Ion Battery Anodes: Materials and Electrochemistry
36. A perylene anhydride crystal as a reversible electrode for K-ion batteries
37. Hard Carbon Microspheres: Potassium-Ion Anode Versus Sodium-Ion Anode
38. Electrochemically Expandable Soft Carbon as Anodes for Na-Ion Batteries
39. New Mechanistic Insights on Na-Ion Storage in Nongraphitizable Carbon
40. ChemInform Abstract: Recent Development on Anodes for Na‐Ion Batteries
41. Recent Development on Anodes for Na‐Ion Batteries
42. Low-Surface-Area Hard Carbon Anode for Na-Ion Batteries via Graphene Oxide as a Dehydration Agent
43. Identify the Removable Substructure in Carbon Activation.
44. Facile synthesis of one-dimensional peapod-like Sb@C submicron-structures
45. Carbon nanofibers derived from cellulose nanofibers as a long-life anode material for rechargeable sodium-ion batteries
46. Na-Ion Battery Anodes: Materials and Electrochemistry.
47. Hard Carbon Microspheres: Potassium-Ion Anode Versus Sodium-Ion Anode.
48. Facile synthesis of one-dimensional peapod-like Sb@C submicron-structures.
49. Corrigendum: Hydronium-Ion Batteries with Perylenetetracarboxylic Dianhydride Crystals as an Electrode.
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