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Mabokela TE, Nwanya AC, Ndipingwi MM, Yussuf ST, Ekwere PI, Uhuo OV, Ikpo CO, Modibane KD, Iwuoha EI. Nanostructured Europium-Doped Layered Lithium Manganese Oxide as a Prospective Cathode Material for Aqueous Lithium-Ion Battery. Electrochim Acta 2023. [DOI: 10.1016/j.electacta.2023.141865] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/11/2023]
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Siller V, Gonzalez-Rosillo JC, Eroles MN, Baiutti F, Liedke MO, Butterling M, Attallah AG, Hirschmann E, Wagner A, Morata A, Tarancón A. Nanoscaled LiMn 2O 4 for Extended Cycling Stability in the 3 V Plateau. ACS APPLIED MATERIALS & INTERFACES 2022; 14:33438-33446. [PMID: 35830969 PMCID: PMC9335525 DOI: 10.1021/acsami.2c10798] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Indexed: 06/15/2023]
Abstract
Extending the potential window toward the 3 V plateau below the typically used range could boost the effective capacity of LiMn2O4 spinel cathodes. This usually leads to an "overdischarge" of the cathode, which can cause severe material damage due to manganese dissolution into the electrolyte and a critical volume expansion (induced by Jahn-Teller distortions). As those factors determine the stability and cycling lifetime for all-solid-state batteries, the operational window of LiMn2O4 is usually limited to 3.5-4.5 V versus Li/Li+ in common battery cells. However, it has been reported that nano-shaped particles and thin films can potentially mitigate these detrimental effects. We demonstrate here that porous LiMn2O4 thin-film cathodes with a certain level of off-stoichiometry show improved cycling stability for the extended cycling range of 2.0-4.5 V versus Li/Li+. We argue through operando spectroscopic ellipsometry that the origin of this stability lies in the surprisingly small volume change in the layer during lithiation.
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Affiliation(s)
- Valerie Siller
- Catalonia
Institute for Energy Research (IREC), Jardins de les Dones de Negre 1, Planta 2, Sant Adrià del Besòs, Barcelona 08930, Spain
| | - Juan Carlos Gonzalez-Rosillo
- Catalonia
Institute for Energy Research (IREC), Jardins de les Dones de Negre 1, Planta 2, Sant Adrià del Besòs, Barcelona 08930, Spain
| | - Marc Nuñez Eroles
- Catalonia
Institute for Energy Research (IREC), Jardins de les Dones de Negre 1, Planta 2, Sant Adrià del Besòs, Barcelona 08930, Spain
| | - Federico Baiutti
- Catalonia
Institute for Energy Research (IREC), Jardins de les Dones de Negre 1, Planta 2, Sant Adrià del Besòs, Barcelona 08930, Spain
| | - Maciej Oskar Liedke
- Helmholtz-Zentrum
Dresden—Rossendorf, Institute of
Radiation Physics, Bautzner
Landstraße 400, Dresden 01328, Germany
| | - Maik Butterling
- Helmholtz-Zentrum
Dresden—Rossendorf, Institute of
Radiation Physics, Bautzner
Landstraße 400, Dresden 01328, Germany
| | - Ahmed G. Attallah
- Helmholtz-Zentrum
Dresden—Rossendorf, Institute of
Radiation Physics, Bautzner
Landstraße 400, Dresden 01328, Germany
| | - Eric Hirschmann
- Helmholtz-Zentrum
Dresden—Rossendorf, Institute of
Radiation Physics, Bautzner
Landstraße 400, Dresden 01328, Germany
| | - Andreas Wagner
- Helmholtz-Zentrum
Dresden—Rossendorf, Institute of
Radiation Physics, Bautzner
Landstraße 400, Dresden 01328, Germany
| | - Alex Morata
- Catalonia
Institute for Energy Research (IREC), Jardins de les Dones de Negre 1, Planta 2, Sant Adrià del Besòs, Barcelona 08930, Spain
| | - Albert Tarancón
- Catalonia
Institute for Energy Research (IREC), Jardins de les Dones de Negre 1, Planta 2, Sant Adrià del Besòs, Barcelona 08930, Spain
- Catalan
Institution for Research and Advanced Studies (ICREA), Passeig Lluís Companys 23, Barcelona 08010, Spain
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Liu Z, Wang J, Yue X, Xie Z, You H, Wang J, Abudula A, Guan G. Foldable nano-Li 2MnO 3 integrated composite polymer solid electrolyte for all-solid-state Li metal batteries with stable interface. J Colloid Interface Sci 2022; 621:232-240. [PMID: 35461138 DOI: 10.1016/j.jcis.2022.04.067] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/28/2021] [Revised: 04/04/2022] [Accepted: 04/10/2022] [Indexed: 11/26/2022]
Abstract
All-solid-state lithium-ion batteries (ASSLBs) are considered as the most promising next-generation energy storage devices. In this work, a low-cost foldable nano-Li2MnO3 integrated Poly (ethylene oxide) (PEO) based composite polymer solid electrolyte (CPSE) is prepared by simply solid-phase method. Density functional theory calculations indicate that the LMO could provide faster ion transfer channels for the migration of lithium ions between PEO chains and segments. As such, the CPSE obtained has a high ionic conductivity of 5.1 × 10-4 S cm-1 at 60 °C with a high lithium ions transference number of 0.5. The CPSE remains stable even at high temperature with no heat escaping. This could improve the safety performance of the batteries. As a result, the lithium metal battery assembled with CPSE works stably after over 200 cycles at a high rate of 0.5C, and its specific capacity is as high as 125 mAh g-1. Also, it is confirmed that this CPSE adapts to three cathode materials. The Li metal pouch battery assembled with the CPSE is foldable and has excellent mechanical properties. All these results indicate that the CPSE obtained has excellent electrochemical and outstanding safety performances, which can make it have broad commercial applications in ASSLBs.
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Affiliation(s)
- Zhao Liu
- Graduate School of Science and Technology, Hirosaki University, 1-Bunkyocho, Hirosaki 036-8560, Japan
| | - Jiajia Wang
- Graduate School of Science and Technology, Hirosaki University, 1-Bunkyocho, Hirosaki 036-8560, Japan
| | - Xiyan Yue
- Henan Key Laboratory of Materials on Deep-Earth Engineering, School of Materials Science and Engineering, Henan Polytechnic University, Jiaozuo 454003, China
| | - Zhengkun Xie
- College of Chemistry, Zhengzhou University, Kexue Avenue 100, Zhengzhou, Henan 450001, China
| | - Hongxin You
- School of Chemical Engineering, Dalian University of Technology, Dalian 116024, Liaoning, China
| | - Jiwei Wang
- Graduate School of Science and Technology, Hirosaki University, 1-Bunkyocho, Hirosaki 036-8560, Japan
| | - Abuliti Abudula
- Graduate School of Science and Technology, Hirosaki University, 1-Bunkyocho, Hirosaki 036-8560, Japan.
| | - Guoqing Guan
- Graduate School of Science and Technology, Hirosaki University, 1-Bunkyocho, Hirosaki 036-8560, Japan; Energy Conversion Engineering Laboratory, Institute of Regional Innovation (IRI), Hirosaki University, 3-Bunkyocho, Hirosaki 036-8561, Japan.
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Improved Electrochemical Behavior and Thermal Stability of Li and Mn-Rich Cathode Materials Modified by Lithium Sulfate Surface Treatment. INORGANICS 2022. [DOI: 10.3390/inorganics10030039] [Citation(s) in RCA: 2] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/16/2022] Open
Abstract
High-energy cathode materials that are Li- and Mn-rich lithiated oxides—for instance, 0.35Li2MnO3.0.65LiNi0.35Mn0.45Co0.20O2 (HE-NCM)—are promising for advanced lithium-ion batteries. However, HE-NCM cathodes suffer from severe degradation during cycling, causing gradual capacity loss, voltage fading, and low-rate capability performance. In this work, we applied an effective approach to creating a nano-sized surface layer of Li2SO4 on the above material, providing mitigation of the interfacial side reactions while retaining the structural integrity of the cathodes upon extended cycling. The Li2SO4 coating was formed on the surface of the material by mixing it with nanocrystalline Li2SO4 and annealing at 600 °C. We established enhanced electrochemical behavior with ~20% higher discharge capacity, improved charge-transfer kinetics, and higher rate capability of HE-NCM cathodes due to the presence of the Li2SO4 coating. Online electrochemical mass spectrometry studies revealed lower CO2 and H2 evolution in the treated samples, implying that the Li2SO4 layer partially suppresses the electrolyte degradation during the initial cycle. In addition, a ~28% improvement in the thermal stability of the Li2SO4-treated samples in reactions with battery solution was also shown by DSC studies. The post-cycling analysis allowed us to conclude that the Li2SO4 phase remained on the surface and retained its structure after 100 cycles.
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Karunawan J, Floweri O, Santosa SP, Sumboja A, Iskandar F. Stable layered-layered-spinel structure of the Li1.2Ni0.13Co0.13Mn0.54O2 cathode synthesized by ball-milling assisted solid-state method. J Electroanal Chem (Lausanne) 2022. [DOI: 10.1016/j.jelechem.2022.116050] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/25/2022]
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Kaisar N, Paul T, Chi PW, Su YH, Singh A, Chu CW, Wu MK, Wu PM. Electrochemical Performance of Orthorhombic CsPbI 3 Perovskite in Li-Ion Batteries. MATERIALS 2021; 14:ma14195718. [PMID: 34640106 PMCID: PMC8510073 DOI: 10.3390/ma14195718] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 08/31/2021] [Revised: 09/24/2021] [Accepted: 09/28/2021] [Indexed: 11/16/2022]
Abstract
A facile solution process was employed to prepare CsPbI3 as an anode material for Li-ion batteries. Rietveld refinement of the X-ray data confirms the orthorhombic phase of CsPbI3 at room temperature. As obtained from bond valence calculations, strained bonds between Pb and I are identified within PbI6 octahedral units. Morphological study shows that the as-prepared δ-CsPbI3 forms a nanorod-like structure. The XPS analysis confirm the presence of Cs (3d, 4d), Pb (4d, 4f, 5d) and I (3p, 3d, 4d). The lithiation process involves both intercalation and conversion reactions, as confirmed by cyclic voltammetry (CV) and first-principles calculations. Impedance spectroscopy coupled with the distribution function of relaxation times identifies charge transfer processes due to Li metal foil and anode/electrolyte interfaces. An initial discharge capacity of 151 mAhg−1 is found to continuously increase to reach a maximum of ~275 mAhg−1 at 65 cycles, while it drops to ~240 mAhg−1 at 75 cycles and then slowly decreases to 235 mAhg−1 at 100 cycles. Considering the performance and structural integrity during electrochemical performance, δ-CsPbI3 is a promising material for future Li-ion battery (LIB) application.
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Affiliation(s)
- Nahid Kaisar
- Institute of Physics, Academia Sinica, Taipei 11529, Taiwan; (N.K.); (T.P.); (P.-W.C.); (Y.-H.S.); (M.-K.W.)
| | - Tanmoy Paul
- Institute of Physics, Academia Sinica, Taipei 11529, Taiwan; (N.K.); (T.P.); (P.-W.C.); (Y.-H.S.); (M.-K.W.)
| | - Po-Wei Chi
- Institute of Physics, Academia Sinica, Taipei 11529, Taiwan; (N.K.); (T.P.); (P.-W.C.); (Y.-H.S.); (M.-K.W.)
| | - Yu-Hsun Su
- Institute of Physics, Academia Sinica, Taipei 11529, Taiwan; (N.K.); (T.P.); (P.-W.C.); (Y.-H.S.); (M.-K.W.)
| | - Anupriya Singh
- Research Center for Applied Science, Academia Sinica, Taipei 11529, Taiwan; (A.S.); (C.-W.C.)
| | - Chih-Wei Chu
- Research Center for Applied Science, Academia Sinica, Taipei 11529, Taiwan; (A.S.); (C.-W.C.)
| | - Maw-Kuen Wu
- Institute of Physics, Academia Sinica, Taipei 11529, Taiwan; (N.K.); (T.P.); (P.-W.C.); (Y.-H.S.); (M.-K.W.)
| | - Phillip M. Wu
- Department of Materials and Mineral Resources Engineering, National Taipei University of Technology, Taipei 10608, Taiwan
- Correspondence:
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