Highly Stabilized Single-Crystal P2-Type Layered Oxides Obtained Via Rational Crystal Orientation Modulation for Sodium-Ion Batteries

35 Pages Posted: 18 Nov 2022

See all articles by Fengping Zhang

Fengping Zhang

Guangxi University

Yao Lu

Guangxi University

Yun Guo

Guangxi University

Chunliu Li

affiliation not provided to SSRN

Yan Liu

Guangxi University

Maofeng Yang

affiliation not provided to SSRN

Binyu Zhao

Guangxi University

Wenwei Wu

Guangxi University

Xuehang Wu

Guangxi University

Multiple version iconThere are 2 versions of this paper

Abstract

The development of P2-type Na–Ni–Mn oxides as high-voltage cathode materials for sodium-ion batteries is being extensively researched. However, achieving good electrochemical reversibility for such oxides at high voltage remains challenging. Herein, highly dispersed hexagonal-prism-like single-crystal P2-type Na0.66Ni0.26Zn0.07Mn0.67O2 (MC-NNZM) with a high proportion of {001} planes is synthesized through a combined coprecipitation and molten-salt method. The presence of molten Na2SO4 and the low surface energy of {001} planes are critical in forming the anisotropic single-crystal structure. In the 2.0–4.4 V voltage window, MC-NNZM exhibits a reversible capacity of 122.1 mAh g−1 with a median discharge voltage of 3.5 V at 10 mA g−1. Moreover, the capacity retentions of MC-NNZM reach 95.8% and 98.3% in the 2.0−4.4 V and 2.0−4.3 V voltage ranges after 100 cycles at 100 mA g−1, respectively. Electrochemical in situ X-ray diffraction patterns reveal that, because of the {001}-dominated single-crystal structure, the gliding of transition metal oxide slabs in the high-voltage region is effectively restrained; subsequently, this significantly mitigates the volume change of MC-NNZM during cycling. Consequently, unlike layered oxides with random crystal orientation, MC-NNZM is effectively resistant to mechanical fracture without the irreversible formation of intragranular cracks and dislocations after extensive cycling, thus avoiding continuous electrolyte decomposition on the material surface and stabilizing efficient ionic/electronic transport paths in the cathode.  This work paves a new avenue for improving the cycling stability of P2-type layered oxides with a high upper-cutoff voltage based on a single-crystal structure formed via rational crystal orientation modulation.

Keywords: Sodium-ion batteries, P2-type Na-Ni-Mn oxides, Single-crystal cathode, Crystal orientation modulation, Electro-mechanical degradation

Suggested Citation

Zhang, Fengping and Lu, Yao and Guo, Yun and Li, Chunliu and Liu, Yan and Yang, Maofeng and Zhao, Binyu and Wu, Wenwei and Wu, Xuehang, Highly Stabilized Single-Crystal P2-Type Layered Oxides Obtained Via Rational Crystal Orientation Modulation for Sodium-Ion Batteries. Available at SSRN: https://ssrn.com/abstract=4280263 or http://dx.doi.org/10.2139/ssrn.4280263

Fengping Zhang

Guangxi University ( email )

East Daxue Road #100
Nanning, 530004
China

Yao Lu

Guangxi University ( email )

East Daxue Road #100
Nanning, 530004
China

Yun Guo

Guangxi University ( email )

East Daxue Road #100
Nanning, 530004
China

Chunliu Li

affiliation not provided to SSRN ( email )

Yan Liu

Guangxi University ( email )

East Daxue Road #100
Nanning, 530004
China

Maofeng Yang

affiliation not provided to SSRN ( email )

Binyu Zhao

Guangxi University ( email )

East Daxue Road #100
Nanning, 530004
China

Wenwei Wu

Guangxi University ( email )

East Daxue Road #100
Nanning, 530004
China

Xuehang Wu (Contact Author)

Guangxi University ( email )

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