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Reversible Alloying of Phosphorene with Potassium and Its Stabilization Using Reduced Graphene Oxide Buffer Layers

Authors :
Jain, Rishabh
Hundekar, Prateek
Deng, Tao
Fan, Xiulin
Singh, Yashpal
Yoshimura, Anthony
Sarbada, Varun
Gupta, Tushar
Lakhnot, Aniruddha S.
Kim, Sang Ouk
Wang, Chunsheng
Koratkar, Nikhil
Source :
ACS Nano; December 2019, Vol. 13 Issue: 12 p14094-14106, 13p
Publication Year :
2019

Abstract

High specific capacity materials that can store potassium (K) are essential for next-generation K-ion batteries. One such candidate material is phosphorene (the 2D allotrope of phosphorus (P)), but the potassiation capability of phosphorene has not yet been established. Here we systematically investigate the alloying of few-layer phosphorene (FLP) with K. Unlike lithium (Li) and sodium (Na), which form Li3P and Na3P, FLP alloys with K to form K4P3, which was confirmed by ex situX-ray characterization as well as density functional theory calculations. The formation of K4P3results in high specific capacity (∼1200 mAh g–1) but poor cyclic stability (only ∼9% capacity retention in subsequent cycles). We show that this capacity fade can be successfully mitigated by the use of reduced graphene oxide (rGO) as buffer layers to suppress the pulverization of FLP. We studied the performance of rGO and single-walled carbon nanotubes (sCNTs) as buffer materials and found that rGO being a 2D material can better encapsulate and protect FLP relative to 1D sCNTs. The half-cell performance of FLP/rGO could also be successfully reproduced in a full-cell configuration, indicating the possibility of high-performance K-ion batteries that could offer a sustainable and low-cost alternative to Li-ion technology.

Details

Language :
English
ISSN :
19360851 and 1936086X
Volume :
13
Issue :
12
Database :
Supplemental Index
Journal :
ACS Nano
Publication Type :
Periodical
Accession number :
ejs51552353
Full Text :
https://doi.org/10.1021/acsnano.9b06680