Spatial Effect on the Performance of Carboxylate Anode Materials in Na‐Ion Batteries

Author:

Huang Jinghao1,Li Shi2,Wang You3,Kim Eric Youngsam1,Yang Zhenzhen4,Chen Dongchang3,Cheng Lei5,Luo Chao16ORCID

Affiliation:

1. Department of Chemistry and Biochemistry George Mason University Fairfax VA 22030 USA

2. Material Science Division Argonne National Laboratory Lemont Illinois 60439 USA

3. Department of Chemistry and Chemical Biology University of New Mexico Albuquerque NM 87131 USA

4. Chemical Sciences and Engineering Division Argonne National Laboratory Lemont IL 60439 USA

5. Chemical Sciences Division Oak Ridge National Laboratory Oak Ridge TN 37831 USA

6. Quantum Science & Engineering Center George Mason University Fairfax VA 22030 USA

Abstract

AbstractDeveloping low‐voltage carboxylate anode materials is critical for achieving low‐cost, high‐performance, and sustainable Na‐ion batteries (NIBs). However, the structure design rationale and structure‐performance correlation for organic carboxylates in NIBs remains elusive. Herein, the spatial effect on the performance of carboxylate anode materials is studied by introducing heteroatoms in the conjugation structure and manipulating the positions of carboxylate groups in the aromatic rings. Planar and twisted organic carboxylates are designed and synthesized to gain insight into the impact of geometric structures to the electrochemical performance of carboxylate anodes in NIBs. Among the carboxylates, disodium 2,2’‐bipyridine‐5,5’‐dicarboxylate (2255‐Na) with a planar structure outperforms the others in terms of highest specific capacity (210 mAh g−1), longest cycle life (2000 cycles), and best rate capability (up to 5 A g−1). The cyclic stability and redox mechanism of 2255‐Na in NIBs are exploited by various characterization techniques. Moreover, high‐temperature (up to 100 °C) and all‐organic batteries based on a 2255‐Na anode, a polyaniline (PANI) cathode, and an ether‐based electrolyte are achieved and exhibited exceptional electrochemical performance. Therefore, this work demonstrates that designing organic carboxylates with extended planar conjugation structures is an effective strategy to achieve high‐performance and sustainable NIBs.

Funder

Vehicle Technologies Office

National Science Foundation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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