Real-time imaging of Na<sup>+</sup> reversible intercalation in "Janus" graphene stacks for battery applications.

Sun, Jinhua; Sadd, Matthew; Edenborg, Philip; Grönbeck, Henrik; Thiesen, Peter H; Xia, Zhenyuan; Quintano, Vanesa; Qiu, Ren et al. · Sci Adv · 2021

basic_science · Level V

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Abstract

Sodium, in contrast to other metals, cannot intercalate in graphite, hindering the use of this cheap, abundant element in rechargeable batteries. Here, we report a nanometric graphite-like anode for Na<sup>+</sup> storage, formed by stacked graphene sheets functionalized only on one side, termed Janus graphene. The asymmetric functionalization allows reversible intercalation of Na<sup>+</sup>, as monitored by operando Raman spectroelectrochemistry and visualized by imaging ellipsometry. Our Janus graphene has uniform pore size, controllable functionalization density, and few edges; it can store Na<sup>+</sup> differently from graphite and stacked graphene. Density functional theory calculations demonstrate that Na<sup>+</sup> preferably rests close to -NH<sub>2</sub> group forming synergic ionic bonds to graphene, making the interaction process energetically favorable. The estimated sodium storage up to C<sub>6.9</sub>Na is comparable to graphite for standard lithium ion batteries. Given such encouraging Na<sup>+</sup> reversible intercalation behavior, our approach provides a way to design carbon-based materials for sodium ion batteries.