Spectroscopic Insights into the Electrochemical Mechanism of Rechargeable Calcium/Sulfur Batteries
暂无分享,去创建一个
L. Stievano | R. Dedryvère | R. Dominko | Klemen Pirnat | D. Foix | G. Aquilanti | I. Arčon | Alen Vižintin | J. Bitenc | A. Scafuri | R. Berthelot | Dominique Foix
[1] M. Fichtner,et al. Rechargeable Calcium-Sulfur Batteries Enabled by an Efficient Borate-Based Electrolyte. , 2020, Small.
[2] T. L. Liu,et al. Optimizing Calcium Electrolytes by Solvent Manipulation for Calcium Batteries , 2020 .
[3] T. L. Liu,et al. Dawn of Calcium Batteries. , 2020, Angewandte Chemie.
[4] Wenchen Ren,et al. Recent advances in shuttle effect inhibition for lithium sulfur batteries , 2019 .
[5] R. Dugas,et al. Methods and Protocols for Reliable Electrochemical Testing in Post-Li Batteries (Na, K, Mg, and Ca) , 2019, Chemistry of materials : a publication of the American Chemical Society.
[6] Z. Zhao‐Karger. CHAPTER 10. Magnesium–Sulfur Batteries , 2019, Energy and Environment Series.
[7] Linda F. Nazar,et al. Reversible Calcium Plating and Stripping at Room Temperature Using a Borate Salt , 2019, ACS Energy Letters.
[8] M. Morcrette,et al. Alloys to Replace Mg Anodes in Efficient and Practical Mg-Ion/Sulfur Batteries , 2019, ACS Energy Letters.
[9] M. R. Palacín,et al. Multivalent rechargeable batteries , 2019, Energy Storage Materials.
[10] L. Stievano,et al. Snapshot on Negative Electrode Materials for Potassium-Ion Batteries , 2019, Front. Energy Res..
[11] A. Manthiram,et al. Current Status and Future Prospects of Metal–Sulfur Batteries , 2019, Advanced materials.
[12] J. Xie,et al. Recent Progress in Multivalent Metal (Mg, Zn, Ca, and Al) and Metal-Ion Rechargeable Batteries with Organic Materials as Promising Electrodes. , 2019, Small.
[13] M. Giorgetti,et al. Applying chemometrics to study battery materials: Towards the comprehensive analysis of complex operando datasets , 2019, Energy Storage Materials.
[14] M. R. Palacín,et al. Multivalent Batteries—Prospects for High Energy Density: Ca Batteries , 2019, Front. Chem..
[15] A. Manthiram,et al. Toward a Reversible Calcium‐Sulfur Battery with a Lithium‐Ion Mediation Approach , 2019, Advanced Energy Materials.
[16] M. Fichtner,et al. Beyond Intercalation Chemistry for Rechargeable Mg Batteries: A Short Review and Perspective , 2019, Front. Chem..
[17] Rosy,et al. Metal–Sulfur Batteries: Overview and Research Methods , 2019, ACS Energy Letters.
[18] S. Mukherjee,et al. Two-Dimensional Anode Materials for Non-lithium Metal-Ion Batteries , 2019, ACS Applied Energy Materials.
[19] Yueyu Tong,et al. Nonlithium Metal–Sulfur Batteries: Steps Toward a Leap , 2018, Advanced materials.
[20] Hongyang Zhao,et al. Electrolytes for Batteries with Earth-Abundant Metal Anodes. , 2018, Chemistry.
[21] D. Prendergast,et al. Rate Constants of Electrochemical Reactions in a Lithium-Sulfur Cell Determined by Operando X-ray Absorption Spectroscopy , 2018 .
[22] Yang-Kook Sun,et al. Recent Progress in Rechargeable Potassium Batteries , 2018, Advanced Functional Materials.
[23] Z. Pan,et al. Recycling of lithium-ion batteries: Recent advances and perspectives , 2018, Journal of Power Sources.
[24] Dong-Won Kim,et al. Sodium-ion batteries: New opportunities beyond energy storage by lithium , 2018, Journal of Power Sources.
[25] A. Manthiram,et al. Toward Highly Reversible Magnesium–Sulfur Batteries with Efficient and Practical Mg[B(hfip)4]2 Electrolyte , 2018, ACS Energy Letters.
[26] S. Passerini,et al. Non-aqueous potassium-ion batteries: a review , 2018, Current Opinion in Electrochemistry.
[27] M. R. Palacín,et al. On the road toward calcium-based batteries , 2018, Current Opinion in Electrochemistry.
[28] Shinichi Komaba,et al. Towards K-Ion and Na-Ion Batteries as "Beyond Li-Ion". , 2018, Chemical record.
[29] Gerbrand Ceder,et al. Recent Progress and Perspective in Electrode Materials for K‐Ion Batteries , 2018 .
[30] Jianqiu Deng,et al. Sodium‐Ion Batteries: From Academic Research to Practical Commercialization , 2018 .
[31] Prasant Kumar Nayak,et al. From Lithium-Ion to Sodium-Ion Batteries: Advantages, Challenges, and Surprises. , 2018, Angewandte Chemie.
[32] N. Sharma,et al. An Initial Review of the Status of Electrode Materials for Potassium‐Ion Batteries , 2017 .
[33] M. Zitnik,et al. Mechanistic Study of Magnesium–Sulfur Batteries , 2017 .
[34] Kang Xu,et al. Reversible S0 /MgSx Redox Chemistry in a MgTFSI2 /MgCl2 /DME Electrolyte for Rechargeable Mg/S Batteries. , 2017, Angewandte Chemie.
[35] P. Johansson,et al. Predicting the Solubility of Sulfur: A COSMO-RS-Based Approach to Investigate Electrolytes for Li-S Batteries. , 2017, Chemistry.
[36] Shaojun Guo,et al. Recent Progress in the Design of Advanced Cathode Materials and Battery Models for High‐Performance Lithium‐X (X = O2, S, Se, Te, I2, Br2) Batteries , 2017, Advanced materials.
[37] Chenglong Zhao,et al. Recent advances of electrode materials for low-cost sodium-ion batteries towards practical application for grid energy storage , 2017 .
[38] Rahul Malik,et al. Odyssey of Multivalent Cathode Materials: Open Questions and Future Challenges. , 2017, Chemical reviews.
[39] Xiulei Ji,et al. Potassium Secondary Batteries. , 2017, ACS applied materials & interfaces.
[40] M. Giorgetti,et al. Operando characterization of batteries using x-ray absorption spectroscopy: advances at the beamline XAFS at synchrotron Elettra , 2017 .
[41] L. Nazar,et al. Methods and Protocols for Electrochemical Energy Storage Materials Research , 2017 .
[42] Anton Van der Ven,et al. Stability of Prismatic and Octahedral Coordination in Layered Oxides and Sulfides Intercalated with Alkali and Alkaline-Earth Metals , 2016 .
[43] M. R. Palacín,et al. Towards a calcium-based rechargeable battery. , 2016, Nature materials.
[44] R. Chellappan,et al. Fluorinated Reduced Graphene Oxide as an Interlayer in Li–S Batteries , 2015 .
[45] F. Kang,et al. Secondary batteries with multivalent ions for energy storage , 2015, Scientific Reports.
[46] L. Stievano,et al. Analytical Detection of Polysulfides in the Presence of Adsorption Additives by Operando X‑ray Absorption Spectroscopy , 2015 .
[47] L. Nazar,et al. Radical or Not Radical: Revisiting Lithium–Sulfur Electrochemistry in Nonaqueous Electrolytes , 2015 .
[48] D. Prendergast,et al. Characterization of Polysulfide Radicals Present in an Ether‐Based Electrolyte of a Lithium–Sulfur Battery During Initial Discharge Using In Situ X‐Ray Absorption Spectroscopy Experiments and First‐Principles Calculations , 2015 .
[49] Linda F Nazar,et al. The emerging chemistry of sodium ion batteries for electrochemical energy storage. , 2015, Angewandte Chemie.
[50] J. Muldoon,et al. Quest for nonaqueous multivalent secondary batteries: magnesium and beyond. , 2014, Chemical reviews.
[51] C. Santilli,et al. Multivariate curve resolution analysis applied to time-resolved synchrotron X-ray Absorption Spectroscopy monitoring of the activation of copper alumina catalyst , 2014 .
[52] Jie Gao,et al. Mechanistic insights into operational lithium–sulfur batteries by in situ X-ray diffraction and absorption spectroscopy , 2014 .
[53] J. Cabana,et al. X-ray Absorption Spectra of Dissolved Polysulfides in Lithium-Sulfur Batteries from First-Principles. , 2014, The journal of physical chemistry letters.
[54] L. Stievano,et al. X-ray absorption near-edge structure and nuclear magnetic resonance study of the lithium-sulfur battery and its components. , 2014, Chemphyschem : a European journal of chemical physics and physical chemistry.
[55] Linda F. Nazar,et al. Sulfur Speciation in Li–S Batteries Determined by Operando X-ray Absorption Spectroscopy , 2013 .
[56] J. Gerbec,et al. A High Capacity Calcium Primary Cell Based on the Ca–S System , 2013 .
[57] Gerbrand Ceder,et al. Electrode Materials for Rechargeable Sodium‐Ion Batteries: Potential Alternatives to Current Lithium‐Ion Batteries , 2012 .
[58] Christopher M Wolverton,et al. Electrical energy storage for transportation—approaching the limits of, and going beyond, lithium-ion batteries , 2012 .
[59] Allen G. Oliver,et al. Structure and compatibility of a magnesium electrolyte with a sulphur cathode , 2011, Nature communications.
[60] Jean-Marie Tarascon,et al. Is lithium the new gold? , 2010, Nature chemistry.
[61] Y. Inada,et al. Observation of transformation of calcite to gypsum in mineral aerosols by Ca K-edge X-ray absorption near-edge structure (XANES) , 2008 .
[62] D. Aurbach,et al. The Electrochemical Behavior of Calcium Electrodes in a Few Organic Electrolytes , 1991 .
[63] J. Grdadolnik,et al. Electrochemical Performance and Mechanism of Calcium Metal‐Organic Battery , 2020 .
[64] Kang Xu,et al. Thermodynamics and Kinetics of Sulfur Cathode during Discharge in MgTFSI2–DME Electrolyte , 2018, Advanced materials.
[65] M. Fichtner,et al. Polysulfides Formation in Different Electrolytes from the Perspective of X-ray Absorption Spectroscopy , 2018 .
[66] P. Bruce,et al. Plating and stripping calcium in an organic electrolyte. , 2018, Nature materials.
[67] Qi He,et al. Understanding the Charging Mechanism of Lithium-Sulfur Batteries Using Spatially Resolved Operando X-Ray Absorption Spectroscopy , 2016 .
[68] Hubert A. Gasteiger,et al. UvA-DARE (Digital Academic Repository) Operando Characterization of Intermediates Produced in a Lithium-Sulfur Battery Gorlin, , 2015 .