Rational design and synthesis of nanosheets self-assembled hierarchical flower-ball-like CuFeS2 for boosted wide temperature sodium-ion batteries
暂无分享,去创建一个
Gang Chen | Zexiang Shen | Ruiyuan Tian | Shiyu Yao | Zhixuan Wei | Xiaoqi Wang | Xu Jin | Fei Du | Ge Sun | Hezhe Lin
[1] H. Pang,et al. In-situ immobilization cobalt-based metal-organic frameworks nanosheets on carbon composites for supercapacitors , 2022, Journal of Energy Storage.
[2] Feixiang Wu,et al. Heterogeneous Interfacial Layers Derived from the In Situ Reaction of CoF2 Nanoparticles with Sodium Metal for Dendrite‐Free Na Metal Anodes , 2022, Advanced Energy Materials.
[3] Jiabao Li,et al. Sodium titanium phosphate nanocube decorated on tablet-like carbon for robust sodium storage performance at low temperature. , 2022, Journal of colloid and interface science.
[4] W. Luo,et al. Temperature-responsive solid-electrolyte-interphase enabling stable sodium metal batteries in a wide temperature range , 2022, Nano Energy.
[5] Liang Deng,et al. Tailoring Nitrogen Terminals on MXene Enables Fast Charging and Stable Cycling Na-Ion Batteries at Low Temperature , 2022, Nano-Micro Letters.
[6] Xuli Chen,et al. Distinctive Formation of Bifunctional ZnCoS-rGO 3D Hollow Microsphere Flowers with Excellent Energy Storage Performances , 2022, Chemistry of Materials.
[7] Lifang Jiao,et al. Hierarchical Engineering for High-Energy-Oriented Sodium-Ion Batteries , 2022, Accounts of Materials Research.
[8] Shasha Zheng,et al. In Situ Synthesis of MOF‐74 Family for High Areal Energy Density of Aqueous Nickel–Zinc Batteries , 2022, Advanced materials.
[9] S. Katlakunta,et al. Structural, microstructural, magnetic, and thermoelectric properties of bulk and nanostructured n-type CuFeS2 Chalcopyrite , 2022, Ceramics International.
[10] Yan Yu,et al. An Open‐Ended Ni3S2–Co9S8 Heterostructures Nanocage Anode with Enhanced Reaction Kinetics for Superior Potassium‐Ion Batteries , 2022, Advanced materials.
[11] Tsunghsueh Wu,et al. Hydrothermal and Co-Precipitated Synthesis of Chalcopyrite for Fenton-like Degradation toward Rhodamine B , 2022, Catalysts.
[12] Yuliang Cao,et al. Understanding and Calibration of Charge Storage Mechanism in Cyclic Voltammetry Curves. , 2021, Angewandte Chemie.
[13] S. Indris,et al. CuFeS2 as a Very Stable High-Capacity Anode Material for Sodium-Ion Batteries: A Multimethod Approach for Elucidation of the Complex Reaction Mechanisms during Discharge and Charge Processes. , 2021, ACS applied materials & interfaces.
[14] Wei Sun,et al. Unraveling the Mechanism of Chalcopyrite’s Superior Performance for Lithium Storage , 2021 .
[15] X. Lou,et al. Rational Design and Engineering of One-Dimensional Hollow Nanostructures for Efficient Electrochemical Energy Storage. , 2021, Angewandte Chemie.
[16] Yang Bai,et al. Controllable synthesis of ultrathin layered transition metal hydroxide/zeolitic imidazolate framework-67 hybrid nanosheets for high-performance supercapacitors , 2021 .
[17] F. Du,et al. Polymorph Engineering for Boosted Volumetric Na‐Ion and Li‐Ion Storage , 2021, Advanced materials.
[18] F. Ran,et al. Design Strategies of 3D Carbon‐Based Electrodes for Charge/Ion Transport in Lithium Ion Battery and Sodium Ion Battery , 2021, Advanced Functional Materials.
[19] F. Du,et al. Boosting potassium-storage performance via the functional design of a heterostructured Bi2S3@RGO composite. , 2020, Nanoscale.
[20] X. Lou,et al. Recent Advances on Mixed Metal Sulfides for Advanced Sodium‐Ion Batteries , 2020, Advanced materials.
[21] V. Presser,et al. Pseudocapacitance: From Fundamental Understanding to High Power Energy Storage Materials. , 2020, Chemical reviews.
[22] H. Pang,et al. Applications of Tin Sulfide‐Based Materials in Lithium‐Ion Batteries and Sodium‐Ion Batteries , 2020, Advanced Functional Materials.
[23] Teng Zhang,et al. Transition metal chalcogenide anodes for sodium storage , 2020 .
[24] A. Arof,et al. Study on Li+ ion diffusion in Li2SnO3 anode material by CV and EIS techniques , 2019 .
[25] X. Lou,et al. Synthesis of CuS@CoS2 Double-Shelled Nanoboxes with Enhanced Sodium Storage Properties. , 2019, Angewandte Chemie.
[26] Wei Sun,et al. CuFeS2 as an anode material with an enhanced electrochemical performance for lithium-ion batteries fabricated from natural ore chalcopyrite , 2019, Journal of Solid State Electrochemistry.
[27] X. Lou,et al. Synthesis of CuS@CoS 2 Double‐Shelled Nanoboxes with Enhanced Sodium Storage Properties , 2019, Angewandte Chemie.
[28] F. Du,et al. Nanotube-assembled pine-needle-like CuS as an effective energy booster for sodium-ion storage , 2019, Journal of Materials Chemistry A.
[29] Xiaobo Ji,et al. Exploration and Size Engineering from Natural Chalcopyrite to High-Performance Electrode Materials for Lithium-Ion Batteries. , 2019, ACS applied materials & interfaces.
[30] X. Lou,et al. Hierarchical Microboxes Constructed by SnS Nanoplates Coated with Nitrogen-Doped Carbon for Efficient Sodium Storage. , 2019, Angewandte Chemie.
[31] X. Lou,et al. A Ternary Fe1−xS@Porous Carbon Nanowires/Reduced Graphene Oxide Hybrid Film Electrode with Superior Volumetric and Gravimetric Capacities for Flexible Sodium Ion Batteries , 2019, Advanced Energy Materials.
[32] C. Delmas,et al. Sodium and Sodium‐Ion Batteries: 50 Years of Research , 2018 .
[33] Shasha Zheng,et al. Transition Metal Sulfides Based on Graphene for Electrochemical Energy Storage , 2018 .
[34] Jun Lu,et al. Phosphorus: An Anode of Choice for Sodium-Ion Batteries , 2018 .
[35] S. Passerini,et al. A cost and resource analysis of sodium-ion batteries , 2018 .
[36] Prasant Kumar Nayak,et al. From Lithium-Ion to Sodium-Ion Batteries: Advantages, Challenges, and Surprises. , 2018, Angewandte Chemie.
[37] Yu Zhang,et al. Alloy‐Based Anode Materials toward Advanced Sodium‐Ion Batteries , 2017, Advanced materials.
[38] Yuyi Liu,et al. CuFeS2 Quantum Dots Anchored in Carbon Frame: Superior Lithium Storage Performance and the Study of Electrochemical Mechanism. , 2017, ACS applied materials & interfaces.
[39] Y. Gogotsi,et al. MoS2 Nanosheets Vertically Aligned on Carbon Paper: A Freestanding Electrode for Highly Reversible Sodium‐Ion Batteries , 2016 .
[40] Chongqing Yang,et al. PVP-assisted synthesis of shape-controlled CuFeS2 nanocrystals for Li-ion batteries , 2015, Journal of Materials Science.
[41] Yiyong Zhang,et al. Ether based electrolyte improves the performance of CuFeS2 spike-like nanorods as a novel anode for lithium storage , 2015 .
[42] W. Ding,et al. Electrochemical performance of the chalcopyrite CuFeS2 as cathode for lithium ion battery , 2013 .
[43] H. Koshina,et al. Effects of an additive material, CuFeS2, on Li/CuO battery performance , 1987 .
[44] Jianping Gao,et al. Nitrogen/sulfur dual-doped reduced graphene oxide supported CuFeS2 as an efficient electrocatalyst for the oxygen reduction reaction , 2017 .