Tailoring the LiNbO3coating of Ni-rich cathode materials for stable and high-performance all-solid-state batteries

Tsinghua University Press - Tập 1 - Trang e9120016 - 2022
SeyedHosein Payandeh1, Torsten Brezesinski1, Andrey Mazilkin2, Aleksandr Kondrakov3
1Battery and Electrochemistry Laboratory, Institute of Nanotechnology,GERMANY. Karlsruhe Institute of Technology (KIT), 76131,GERMANY.
2Battery and Electrochemistry Laboratory, Institute of Nanotechnology,GERMANY. Karlsruhe Institute of Technology (KIT), 76131,GERMANY. Karlsruhe Nano Micro Facility,GERMANY. Karlsruhe Institute of Technology (KIT), 76131,GERMANY.
3Battery and Electrochemistry Laboratory, Institute of Nanotechnology,GERMANY. Karlsruhe Institute of Technology (KIT), 76131,GERMANY. BASF SE,GERMANY.

Tóm tắt

Từ khóa


Tài liệu tham khảo

Y. K. Sun. Nickel-rich layered cathode materials for automotive lithium-ion batteries: Achievements and perspectives. 2017, 2: 196-223.

W. Howard. Recent developments and likely advances in lithium-ion batteries. 2006, 162: 809-812.

K. Amine. Commercialization of lithium battery technologies for electric vehicles. 2019, 9: 1900161.

Y. K. Sun. High-capacity layered cathodes for next-generation electric vehicles. 2019, 4: 1042-1044.

G. Pasaoglu. The lithium-ion battery: State of the art and future perspectives. 2018, 89: 292-308.

M. Armand. Issues and challenges facing rechargeable lithium batteries. 2001, 414: 359-367.

W. G. Zeier. A solid future for battery development. 2016, 1: 16141.

J. Janek. Solid-state batteries enter EV fray. 2014, 39: 1046-1047.

Y. H. Huang. Promises, challenges, and recent progress of inorganic solid-state electrolytes for all-solid-state lithium batteries. 2018, 30: 1705702.

V. Viswanathan. Challenges in lithium metal anodes for solid-state batteries. 2020, 5: 922-934.

Z. B. Chen. Review-practical challenges hindering the development of solid state Li ion batteries. 2017, 164: A1731-A1744.

Y. S. Meng. Interfaces and interphases in all-solid-state batteries with inorganic solid electrolytes. 2020, 120: 6878-6933.

T. Brezesinski. characterization techniques for all-solid-state lithium-ion batteries. 2021, 2: 2100004.

Y. S. Meng. From nanoscale interface characterization to sustainable energy storage using all-solid-state batteries. 2020, 15: 170-180.

X. Y. Yao. All-solid-state lithium batteries with sulfide electrolytes and oxide cathodes. 2021, 4: 101-135.

J. Janek. On the functionality of coatings for cathode active materials in thiophosphate-based all-solid-state batteries. 2019, 9: 1900626.

Y. Tateyama. Space-charge layer effect at interface between oxide cathode and sulfide electrolyte in all-solid-state lithium-ion battery. 2014, 26: 4248-4255.

G. Ceder. Interface stability in solid-state batteries. 2016, 28: 266-273.

Y. F. Mo. Origin of outstanding stability in the lithium solid electrolyte materials: Insights from thermodynamic analyses based on first-principles calculations. 2015, 7: 23685-23693.

L. Mai. Interfaces in solid-state lithium batteries. 2018, 2: 1991-2015.

J. Janek. Capacity fade in solid-state batteries: Interphase formation and chemomechanical processes in nickel-rich layered oxide cathodes and lithium thiophosphate solid electrolytes. 2017, 29: 5574-5582.

R. Dedryvère. Interface stability of argyrodite LiPSCl toward LiCoO, LiNiCoMnO, and LiMnO in bulk all-solid-state batteries. 2017, 29: 3883-3890.

R. Dedryvère. Redox activity of argyrodite LiPSCl electrolyte in all-solid-state Li-ion battery: An XPS study. 2017, 300: 78-85.

X. X. Xu. High-energy all-solid-state lithium batteries with ultralong cycle life. 2016, 16: 7148-7154.

T. Sasaki. LiNbO-coated LiCoO as cathode material for all solid-state lithium secondary batteries. 2007, 9: 1486-1490.

T. Brezesinski. Stabilizing effect of a hybrid surface coating on a Ni-rich NCM cathode material in all-solid-state batteries. 2019, 31: 9664-9672.

J. Janek. The working principle of a LiCO/LiNbO coating on NCM for thiophosphate-based all-solid-state batteries. 2021, 33: 2110-2125.

T. Brezesinski. Effect of surface carbonates on the cyclability of LiNbO-coated NCM622 in all-solid-state batteries with lithium thiophosphate electrolytes. 2021, 11: 5367.

T. Brezesinski. Impact of cathode material particle size on the capacity of bulk-type all-solid-state batteries. 2018, 3: 992-996.

J. Janek. Origin of carbon dioxide evolved during cycling of nickel-rich layered NCM cathodes. 2018, 10: 38892-38899.

T. Brezesinski. Influence of electronically conductive additives on the cycling performance of argyrodite-based all-solid-state batteries. 2020, 10: 1114-1119.

B. D. McCloskey. Surface lithium carbonate influences electrolyte degradation via reactive oxygen attack in lithium-excess cathode materials. 2021, 33: 4170-4176.

B. D. McCloskey. Residual lithium carbonate predominantly accounts for first cycle CO and CO outgassing of Li-stoichiometric and Li-rich layered transition-metal oxides. 2017, 139: 17853-17860.

K. T. Lee. Residual Li compounds-selective washing process for Ni-rich layered oxide cathode materials for Li-ion batteries. 2021, 168: 100529.

J. Cho. Washing effect of a LiNiCoAlO cathode in water. 2006, 9: A19-A23.

H. A. Gasteiger. Editors' choice-washing of nickel-rich cathode materials for lithium-ion batteries: Towards a mechanistic understanding. 2019, 166: A4056-A4066.

A. Manthiram. Unraveling the intricacies of residual lithium in high-Ni cathodes for lithium-ion batteries. 2021, 6: 941-948.

S. T. Myung. An effective method to reduce residual lithium compounds on Ni-rich Li[NiCoMn]O active material using a phosphoric acid derived LiPO nanolayer. 2015, 8: 1464-1479.

H. A. Gasteiger. Ambient storage derived surface contamination of NCM811 and NCM111: Performance implications and mitigation strategies. 2019, 166: A2322-A2335.

H. A. Gasteiger. Effect of ambient storage on the degradation of Ni-rich positive electrode materials (NMC811) for Li-ion batteries. 2018, 165: A132-A141.

V. Lorenzelli. Infrared spectroscopic identification of species arising from reactive adsorption of carbon oxides on metal oxide surfaces. 1982, 7: 89-126.

T. Brezesinski. Gas evolution in all-solid-state battery cells. 2018, 3: 2539-2543.

T. Brezesinski. LiZrO-coated NCM622 for application in inorganic solid-state batteries: Role of surface carbonates in the cycling performance. 2020, 12: 57146-57154.

M. Bianchini. Advanced nanoparticle coatings for stabilizing layered Ni-rich oxide cathodes in solid-state batteries. 2022, 32: 2111829.

G. Ceder. Characterization of mechanical degradation in an all-solid-state battery cathode. 2020, 8: 17399-17404.

T. Brezesinski. A quasi-multinary composite coating on a nickel-rich NCM cathode material for all-solid-state batteries. 2022, 5: e202100397.

J. Maier. Nanoionics: Ion transport and electrochemical storage in confined systems. 2005, 4: 805-815.

J. Maier. Interfacial effects in lithium and sodium batteries. 2021, 11: 2001455.

J. Janek. Chemo-mechanical expansion of lithium electrode materials-on the route to mechanically optimized all-solid-state batteries. 2018, 11: 2142-2158.

M. T. McDowell. Chemo-mechanical challenges in solid-state batteries. 2019, 1: 845-857.

K. H. Park. Electrochemo-mechanical effects as a critical design factor for all-solid-state batteries. 2022, 26: 100977.

T. Brezesinski. The interplay between (electro)chemical and (chemo)mechanical effects in the cycling performance of thiophosphate-based solid-state batteries. 2022, 1: 015102.

Y. S. Jung. Single- or poly-crystalline Ni-rich layered cathode, sulfide or halide solid electrolyte: Which will be the winners for all-solid-state batteries?. 2021, 11: 2100126.

Q. Zhang. Influence of crystallinity of lithium thiophosphate solid electrolytes on the performance of solid-state batteries. 2021, 11: 2100654.

T. Brezesinski. On the role of surface carbonate species in determining the cycling performance of all-solid-state batteries. 2022, 1: 023501.