Sodium Niobate with a Large Interlayer Spacing: A Fast‐Charging, Long‐Life, and Low‐Temperature Friendly Lithium‐Storage Material

Author:

Gao Jiazhe12,Yang Liting1,Huang Cihui23,Liang Guisheng1,Lei Yi2,Li Songjie2,Wang Wenze2,Ou Yinjun2,Gao Shangfu1,Liu Xuehua2,Cheng Yifeng4,Zhang Jincang4,Liu Zhongzhu5,Guo Aiming5,Monteiro Robson6,Parreira Luanna6,Ribas Rogerio6,Lin Chunfu12,Wu Limin7,Che Renchao14ORCID

Affiliation:

1. Laboratory of Advanced Materials, Shanghai Key Lab of Molecular Catalysis and Innovative Materials, Academy for Engineering & Technology Fudan University Shanghai 200438 China

2. Institute of Materials for Energy and Environment, School of Materials Science and Engineering Qingdao University Qingdao 266071 China

3. School of Materials Science and Engineering Hainan University Haikou 570228 China

4. Zhejiang Laboratory Hangzhou 311100 China

5. CITIC Metal Co.Ltd. Beijing 122099 China

6. Companhia Brasileira de Metalurgia e Mineração (CBMM) Gerais 38183903 Brazil

7. Inner Mongolia University Hohhot 010021 China

Abstract

AbstractNiobate Li+‐storage anode materials with shear ReO3 crystal structures have attracted intensive attention due to their inherent safety and large capacities. However, they generally suffer from limited rate performance, cyclic stability, and temperature adaptability, which are rooted in their insufficient interlayer spacings. Here, sodium niobate (NaNb13O33) micron‐sized particles are developed as a new anode material owning the largest interlayer spacing among the known shear ReO3‐type niobates. The large interlayer spacing of NaNb13O33 enables very fast Li+ diffusivity, remarkably contributing to its superior rate performance with a 2500 to 125 mA g−1 capacity percentage of 63.2%. Moreover, its large interlayer spacing increases the volume‐accommodation capability during lithiation, allowing small unit‐cell‐volume variations (maximum 6.02%), which leads to its outstanding cyclic stability with 87.9% capacity retention after as long as 5000 cycles at 2500 mA g−1. Its cyclic stability is the best in the research field of niobate micron‐sized particles, and comparable to that of “zero‐strain” Li4Ti5O12. At a low temperature of −10 °C, it also exhibits high rate performance with a 1250 to 125 mA g−1 capacity percentage of 65.6%, and even better cyclic stability with 105.4% capacity retention after 5000 cycles at 1250 mA g−1. These comprehensively good electrochemical results pave the way for the practical application of NaNb13O33 in high‐performance Li+ storage.

Funder

National Natural Science Foundation of China

Program of Shanghai Academic Research Leader

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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