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Tailoring Weakly Coordinating Electrolytes via Orbital-Overlap-Enhanced Dipole-dipole Interactions for Low-Temperature Lithium-Ion Batteries. [PDF]
Yan C +10 more
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Preparation and Electrochemical Performance Investigation of Nano-Silicon-Enhanced Graphite Materials Based on Mechanical Grinding Process. [PDF]
Lei L, Yang J, Song D, Chen R, Liao L.
europepmc +1 more source
Graphitizable pitch from pine resin enables bulk graphite from terpenes. [PDF]
Morimoto M +9 more
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Graphite Flows in the U.S.: Insights into a Key Ingredient of Energy Transition
Demand for graphite will grow with expanding use of lithium-ion batteries in the United States. Much graphite is imported, raising supply chain risks. It is therefore imperative to characterize graphite’s sources and sinks.
Jennifer Dunn +2 more
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Graphite as anode materials: Fundamental mechanism, recent progress and advances
Energy Storage Materials, 2021Graphite is a perfect anode and has dominated the anode materials since the birth of lithium ion batteries, benefiting from its incomparable balance of relatively low cost, abundance, high energy density, power density, and very long cycle life.
X M He, Dongsheng Ren, Li Wang
exaly +2 more sources
Revisiting the Roles of Natural Graphite in Ongoing Lithium‐Ion Batteries
Advanced Materials, 2022Graphite, commonly including artificial graphite and natural graphite (NG), possesses a relatively high theoretical capacity of 372 mA h g–1 and appropriate lithiation/de‐lithiation potential, and has been extensively used as the anode of lithium‐ion ...
Yanbing He, Zhijie Wang, Wei Lv
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