Interlayer Confined Capacitive Response via Solvated Cointercalation in Graphite Layers.
basic_science · Level V
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- Record sourced from PubMed, PMID 39933132.
- Also identified by DOI 10.1021/acsnano.4c16593.
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Abstract
Nanofluids confined within two-dimensional materials promote ionic flux, which is essential for achieving ultrahigh-rate capacitor-like responses and high charge storage capacity. Here, we offer quantitative and microscopic insights into the interlayer-confined electric double-layer (EDL) capacitive behavior arising from the cointercalation of Na<sup>+</sup>-<i>x</i>diglyme ([Na-<i>x</i>G2]<sup>+</sup>) into graphite layers. By leveraging <i>in situ</i> nuclear magnetic resonance, electrochemical quartz crystal microbalance, embedded optical fiber sensors, and other techniques, it demonstrates that a nonconstant Na<sup>+</sup>:G2 ratio during cointercalation into graphite with the evolution of the stages. This aligns with the formation of graphite intercalation compounds (GICs) from stage >3 to 1, and a subsequent transition from battery-like intercalation to interlayer-confined EDL adsorption. The stage 1 GIC with an expanded spacing of 1.168 nm shows confined solvated Na<sup>+</sup> ions with strong interactions with carbon, which features the formation of highly mobile Na<sup>+</sup> ions and G2 solvents, leading to the high-rate and stable performance. Our findings offer a deep understanding of the preconditions and microstructure necessary for confined solvated ions in layered materials with capacitor-like electrochemical behavior.