Search Results - "Yu, Guo"
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Mitigating the Large‐Volume Phase Transition of P2‐Type Cathodes by Synergetic Effect of Multiple Ions for Improved Sodium‐Ion Batteries
Published in Advanced energy materials (01-04-2022)“…Layered transition metal oxide P2‐Na2/3Ni1/3Mn2/3O2 usually suffers from large‐volume phase transitions and different Na‐vacancy ordering during sodium…”
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2
High‐Efficiency Cathode Sodium Compensation for Sodium‐Ion Batteries
Published in Advanced materials (Weinheim) (01-08-2020)“…Sodium‐ion batteries have gained much attention for their potential application in large‐scale stationary energy storage due to the low cost and abundant…”
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3
A Universal Strategy toward Air‐Stable and High‐Rate O3 Layered Oxide Cathodes for Na‐Ion Batteries
Published in Advanced functional materials (01-04-2022)“…As one of the fascinating high capacity cathodes, O3‐type layered oxides usually suffer from their intrinsic air sensitivity and sluggish kinetics originating…”
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A Rational Biphasic Tailoring Strategy Enabling High‐Performance Layered Cathodes for Sodium‐Ion Batteries
Published in Angewandte Chemie International Edition (02-05-2022)“…Layered oxide cathodes usually exhibit high compositional diversity, thus providing controllable electrochemical performance for Na‐ion batteries. These…”
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5
Competitive Doping Chemistry for Nickel‐Rich Layered Oxide Cathode Materials
Published in Angewandte Chemie International Edition (16-05-2022)“…Chemical modification of electrode materials by heteroatom dopants is crucial for improving storage performance in rechargeable batteries. Electron…”
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6
Layered Oxide Cathodes for Sodium‐Ion Batteries: Phase Transition, Air Stability, and Performance
Published in Advanced energy materials (15-03-2018)“…The increasing demand for replacing conventional fossil fuels with clean energy or economical and sustainable energy storage drives better battery research…”
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Progress of the Interface Design in All‐Solid‐State Li–S Batteries
Published in Advanced functional materials (19-09-2018)“…Lithium–sulfur (Li–S) batteries are one of the most promising next‐generation battery types for their high energy density and low cost. On the other hand,…”
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8
High‐Capacity Cathode Material with High Voltage for Li‐Ion Batteries
Published in Advanced materials (Weinheim) (01-03-2018)“…Electrochemical energy storage devices with a high energy density are an important technology in modern society, especially for electric vehicles. The most…”
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9
Boron-doped sodium layered oxide for reversible oxygen redox reaction in Na-ion battery cathodes
Published in Nature communications (06-09-2021)“…Na-ion cathode materials operating at high voltage with a stable cycling behavior are needed to develop future high-energy Na-ion cells. However, the…”
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10
Lithium-Sulfur Batteries: Electrochemistry, Materials, and Prospects
Published in Angewandte Chemie International Edition (09-12-2013)“…With the increasing demand for efficient and economic energy storage, Li‐S batteries have become attractive candidates for the next‐generation high‐energy…”
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P3/O3 Integrated Layered Oxide as High‐Power and Long‐Life Cathode toward Na‐Ion Batteries
Published in Small (Weinheim an der Bergstrasse, Germany) (01-03-2021)“…Low‐cost and stable sodium‐layered oxides (such as P2‐ and O3‐phases) are suggested as highly promising cathode materials for Na‐ion batteries (NIBs). Biphasic…”
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Mitigating Electron Leakage of Solid Electrolyte Interface for Stable Sodium‐Ion Batteries
Published in Angewandte Chemie International Edition (23-01-2023)“…The interfacial stability is highly responsible for the longevity and safety of sodium ion batteries (SIBs). However, the continuous solid‐electrolyte…”
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13
Ultra-Uniform SnOx/Carbon Nanohybrids toward Advanced Lithium-Ion Battery Anodes
Published in Advanced materials (Weinheim) (18-06-2014)“…Ultra‐uniform SnOx/carbon nanohybrids for lithium‐ion batteries are successfully prepared by solvent replacement and subsequent electrospinning. The resulting…”
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14
An Artificial Solid Electrolyte Interphase Layer for Stable Lithium Metal Anodes
Published in Advanced materials (Weinheim) (02-03-2016)“…A Li3PO4 solid electrolyte interphase (SEI) layer is demonstrated to be stable in the organic electrolyte, even during the Li deposition/dissolution process…”
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Uniform Lithium Nucleation/Growth Induced by Lightweight Nitrogen‐Doped Graphitic Carbon Foams for High‐Performance Lithium Metal Anodes
Published in Advanced materials (Weinheim) (01-03-2018)“…The lithium metal anode has attracted soaring attention as an ideal battery anode. Unfortunately, nonuniform Li nucleation results in uncontrollable growth of…”
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16
A High-Energy Room-Temperature Sodium-Sulfur Battery
Published in Advanced materials (Weinheim) (26-02-2014)“…Employing small sulfur molecules as the active cathode component for room‐temperature Na‐S batteries, reveals a novel mechanism that is verified for the…”
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Fast Na+ Kinetics and Suppressed Voltage Hysteresis Enabled by a High‐Entropy Strategy for Sodium Oxide Cathodes
Published in Advanced materials (Weinheim) (01-06-2024)“…O3‐type layered transition metal cathodes are promising energy storage materials due to their sufficient sodium reservoir. However, sluggish sodium ions…”
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18
Advanced Electrolytes Enabling Safe and Stable Rechargeable Li‐Metal Batteries: Progress and Prospects
Published in Advanced functional materials (01-11-2021)“…Rechargeable Li‐metal batteries (RLBs) can boost energy yet possess poor cycle stability and safety concerns when utilizing carbonate electrolytes. Countless…”
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Graphitized Carbon Fibers as Multifunctional 3D Current Collectors for High Areal Capacity Li Anodes
Published in Advanced materials (Weinheim) (01-08-2017)“…The Li metal anode has long been considered as one of the most ideal anodes due to its high energy density. However, safety concerns, low efficiency, and huge…”
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Advanced Porous Carbon Materials for High‐Efficient Lithium Metal Anodes
Published in Advanced energy materials (06-12-2017)“…Metallic lithium is considered as a competitive anode candidate for rechargeable Li batteries due to its ultrahigh theoretical specific capacity of 3860 mA h…”
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