Unraveling the electrochemical K-ion intercalation kinetics of sol-gel synthesized Co-substituted K0.7MnO2 electrodes for K-ion batteries

被引:0
作者
Puneeth, Nuthalapati Prasanna Naga [1 ]
Kaushik, Som Datta [2 ]
Selvan, Ramakrishnan Kalai [1 ]
机构
[1] Bharathiar Univ, Dept Phys, Energy Storage & Convers Devices Lab, Coimbatore 641046, Tamil Nadu, India
[2] Bhabha Atom Res Ctr, UGC DAE Consortium Sci Res Mumbai Ctr, 246 C Common Facil Bldg, Mumbai 400085, India
关键词
Layered metal oxides; Neutron powder diffraction; Electrochemical kinetics; K -ion batteries; CATHODE MATERIAL; POTASSIUM; PERFORMANCE; NEUTRON;
D O I
10.1016/j.jelechem.2024.118914
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Developing potassium-ion batteries could complement the existing lithium-ion battery technology in this digital era. The KxMnO2-based layered transition metal oxides can deliver high specific capacity due to the Mn 3 +/4 + redox couple. However, structural changes during the reversible insertion of K-ions affect the material's integrity, resulting in capacity fading. Herein, the substitution of cobalt for manganese was studied to understand the effects of altered structural characteristics on the electrochemical performance of K 0.7 Mn 1-y Co y O 2 (y = 0.0, 0.2, 0.3, and 0.5) cathodes in K-ion batteries. X-ray diffraction (XRD) and neutron powder diffraction (NPD) analysis revealed the formation of a solid solution into a P3-type structure by suppressing the secondary phases accommodating more K-ions (0.7 K+) in the interlayers. The NPD analysis further corroborated the better crystallinity with single-phase formation without impurities. Overlapping cyclic voltammetry (CV) curves and improved coulombic efficiency in galvanostatic charge-discharge (GCD) analyses revealed the inductive effect between Mn and Co ions. Among the prepared compositions, K 0.7 Mn 0.7 Co 0.3 O 2 demonstrated relatively better capacity retention of 89 % at 200 mA/g with a dominant contribution of Mn 3 +/4 + redox couple. The insertion kinetics of K-ions were further analyzed using the galvanostatic intermittent titration technique (GITT), and electrochemical impedance spectroscopy (EIS) techniques, which demonstrated better diffusion coefficients with low reaction resistance and decreased interfacial resistance. In-situ EIS revealed a significant decrease in the charge transfer resistance during potassiation. Redox-active Co 3 +/4 + could effectively mitigate severe structural transformations, ease the insertion of K+ ions, and promote K 0.7 Mn 0.7 Co 0.3 O 2 as a suitable cathode for K-ion batteries.
引用
收藏
页数:12
相关论文
共 50 条
[41]   Electrochemical Redox Processes Involved in Carbon-Coated KVPO4F for High Voltage K-Ion Batteries Revealed by XPS Analysis [J].
Caracciolo, Laure ;
Madec, Lenaic ;
Petit, Emmanuel ;
Gabaudan, Vincent ;
Carlier, Dany ;
Croguennec, Laurence ;
Martinez, Herve .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2020, 167 (13)
[42]   MXene-derived TiSe2/TiO2/C heterostructured hexagonal prisms as high rate anodes for Na-ion and K-ion batteries [J].
Qi, Fangya ;
Shao, Lianyi ;
Lu, Xiaoyi ;
Liu, Guoping ;
Shi, Xiaoyan ;
Sun, Zhipeng .
APPLIED SURFACE SCIENCE, 2022, 605
[43]   Development of P3-type K0.70[Cr0.86Sb0.14]O2 cathode for high-performance K-ion batteries [J].
Ko, Wonseok ;
Kim, Junseong ;
Kang, Jungmin ;
Park, Hyunyoung ;
Lee, Yongseok ;
Ahn, Jinho ;
Ku, Bonyoung ;
Choi, Myungeun ;
Ahn, Hobin ;
Oh, Gwangeon ;
Hwang, Jang-Yeon ;
Kim, Jongsoon .
MATERIALS TODAY ENERGY, 2023, 36
[44]   Fast K-Ion Storage Enabled by N, O Co-Doping and Atomic-Interface Engineering on WS2 [J].
Li, Zhenwei ;
Yuan, Fu ;
Han, Meisheng ;
Yu, Jie .
CHEMICAL ENGINEERING JOURNAL, 2022, 450
[45]   Ultra-capacity and low-cost P3-type K 0.5 Mn 0.96 Fe 0.04 O 2 cathode materials for K-ion batteries [J].
Cong, Jun ;
Luo, Shao-hua ;
Lin, Yi-cheng ;
Li, Peng-yu ;
Qian, Li-xiong ;
Yan, Sheng-xue ;
Liu, Xin ;
Lei, Xue-fei .
CHEMICAL ENGINEERING JOURNAL, 2024, 502
[46]   Incorporating Near-Pseudocapacitance Insertion Ni/Co-Based Hexacyanoferrate and Low-Cost Metallic Zn for Aqueous K-Ion Batteries [J].
Luo, Ping ;
Huang, Zhen ;
Zhang, Wenwei ;
Liu, Chang ;
Liu, Gangyuan ;
Huang, Meng ;
Xiao, Yao ;
Luo, Hongyu ;
Qu, Zhuo ;
Dong, Shijie ;
Xia, Lu ;
Tang, Han ;
An, Qinyou .
CHEMSUSCHEM, 2022, 15 (16)
[47]   Facile and scalable synthesis of a sulfur, selenium and nitrogen co-doped hard carbon anode for high performance Na- and K-ion batteries [J].
Liu, Yu ;
Dai, Haodong ;
An, Yongkang ;
Fu, Lijun ;
An, Qinyou ;
Wu, Yuping .
JOURNAL OF MATERIALS CHEMISTRY A, 2020, 8 (30) :14993-15001
[48]   Structural and electrochemical stabilization enabling high-energy P3-type Cr-based layered oxide cathode for K-ion batteries [J].
Ko, Wonseok ;
Lee, Seokjin ;
Park, Hyunyoung ;
Kang, Jungmin ;
Ahn, Jinho ;
Lee, Yongseok ;
Oh, Gwangeon ;
Yoo, Jung-Keun ;
Hwang, Jang-Yeon ;
Kim, Jongsoon .
CARBON ENERGY, 2024, 6 (05)
[49]   From Na2FePO4F/CNT to NaKFePO4F/CNT as advanced cathode material for K-ion batteries [J].
Bodart, Jerome ;
Eshraghi, Nicolas ;
Sougrati, Moulay Tahar ;
Boschini, Frederic ;
Lippens, Pierre-Emmanuel ;
Vertruyen, Benedicte ;
Mahmoud, Abdelfattah .
JOURNAL OF POWER SOURCES, 2023, 555
[50]   Atomic layer deposition of alumina onto yolk-shell FeS/MoS2 as universal anodes for Li/Na/K-Ion batteries [J].
Han, Bo ;
Chen, Shuangqiang ;
Guo, Chaofei ;
Wu, Minghong ;
Wang, Yong .
ELECTROCHIMICA ACTA, 2022, 402