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| 1 | New electrochemical energy storage systems based on metallic lithium anode the research status,problems and challenges of lithium-sulfur,lithium-oxygen and all solid state batteries显示文摘Li-ion batteries have played a key role in the portable electronics and electrification of transport in modern society. Nevertheless,the limited highest energy density of Li-ion batteries is not sufficient for the long-term needs of society. Since lithium is the lightest metal among all metallic elements and possesses the lowest redox potential of.3.04 V vs. standard hydrogen electrode, it delivers the highest theoretical specific capacity of 3860 mA h g^(-1) and a high working voltage of full batteries which causes a great interest in electrochemical energy storage systems. Lithium-sulfur, lithium-oxygen and corresponding all solid state batteries based on metal lithium anode have received widely attention owing to their high energy densities. However, the problems in the cathode,electrolyte and anode of these three systems restrict their practical application. In this review, the research status and problems of these three energy storage systems are summarized and the challenges and future perspectives are also outlined. | Liangyu Li Chunguang Chen Aishui Yu | 2017 | Science China Chemistry2017,60,11: | 8 |
| 2 | Synthesis and characterization of LiNi 1? x ? y Co x Mn y O 2 as the cathode materials of secondary lithium batteries显示文摘 | Zhaolin Liu Aishui Yu Jim Y Lee | 1999 | Journal of Power Sources1999,,: | 2 |
| 3 | 查看详情显示文摘 | Liu Zhaolin Yu Aishui Lee J Y | | 0,,: | 1 |
| 4 | Ultrasonically treated LiV3O8 as cathode material for secondary lithium batteries 显示文摘 | Aishui Yu | 1997 | Electrochem Soc1997,144,3: | 1 |
| 5 | Ultrasonically Treated LiV3O8 as a Cathode Material for Secondary Lithium Batteries显示文摘 | Naoaki Kumagai Aishui Yu | 1997 | J Electrochem Soc1997,144,3: | 1 |
| 6 | Synthesis of pyrochlore tungsten trioxide thin film and electrochemical lithium intercalation显示文摘 | Yu Aishui Kumagai Naoaki Yashiro Hitoshi | 1997 | Solid State Ionics1997,100,: | 1 |
| 7 | A New Method for Preparing Lithiated Vanadium Oxides and Their Electrochemical Performance in Secondary Lithium Batteries 显示文摘 | Aishui Yu Naoaki Kumagai Zhaolin Liu | 1998 | J Power Sources1998,74,1: | 1 |
| 8 | Modifications of synthetic graphite for secondary lithium-ion battery applications显示文摘 | LIU Zhaolin YU Aishui LEE Jim Y | 1999 | J of Power Sources1999,,82: | 1 |
| 9 | Mesoporous tin oxides as lithium intercalation anode materials显示文摘 | Aishui Yu Roger Frech | 2002 | J Power Sources2002,104,: | 1 |
| 10 | Well-defined carbon nanoframes containing bimetal-N-C active sites as efficient bi-functional electrocatalysts for Li-Ch batterie显示文摘Design and fabrication of framework-structured porous precursors have been regarded as a prospective albeit challenging strategy to obtain bimetal/NC-enriched bifunctional elecrocatalysts. In this work, an effective bottom-up approach involving solution-based self-assembly and a post-annealing process was developed to confine (Co, Zn)-N-C active sites into N-enriched graphitic carbon nanocages. This novel architecture containing N-doped-C stabilized bimetallic nanoparticles derived from ZIF precursors was well-studied by a series of characterization and analysis techniques. Details were given that these well-dispersed (Co, Zn) nanoparticles were encapsulated into the pyridinic-N-dominated graphitic carbon nanocage with a total metal loading of approximately 7.4 at.%. This favorable hierarchical structure not only enhances the electron conductivity, but also owns a sufficient BET surface area facilitating the gas-liquid-solid triphase reaction and producing more space to store discharge products. Importantly, results infer that the interesting nanoframes manifests a satisfying ORR/OER activity and enhanced cell performance whether liquid or solid-state electrolytes are used. As such, our work rationalizes that this type of cage-shaped bimetal-N-C material is promising for high-performance Li-O2 batteries. | Tie Liu Leidanyang Wang Tao Huang Aishui Yu | 2019 | Nano Research2019,12,3: | 1 |
| 11 | Nitrogen-doped porous carbon nanofiber webs/sulfur composites as cathode materials for lithium-sulfur batteries显示文摘 | Lan Zhou Xiujing Lin Tao Huang Aishui Yu | 2014 | Electrochimica Acta2014,,: | 1 |
| 12 | Modifications of syntheticgraphite for secondary lithium-ion battery applications 显示文摘 | Yu Aishui Lee Jim Y | 1999 | J PowerSources1999,8182,: | 1 |
| 13 | Mesoporous Tin Oxides as Lithium Intercalation Anode Materials显示文摘 | Aishui Yu Roger Frech | 2002 | J Power Sources2002,104,: | 1 |
| 14 | Synthesis and characterization of LiNil_x_yCoxMnyO2 as the cathode materials of secondary lithium batteries显示文摘 | Liu Zhaolin Yu Aishui Lee J Y | 1999 | J Power Sources1999,8182,: | 1 |
| 15 | TiO2 nanotube array film prepared by anodization as anode material for lithium ion batteries显示文摘 | Zhen Wei Zheng Liu Rongrong Jiang Chaoqing Bian Tao Huang Aishui Yu | | Journal of Solid State Electrochemistry0,,: | 1 |
| 16 | TiO2 nanotube array film prepared by anodization as anode material for lithium ion batteries显示文摘 | Zhen Wei Zheng Liu Rongrong Jiang Chaoqing Bian Tao Huang Aishui Yu | 2010 | Journal of Solid State Electrochemistry2010,,6: | 1 |
| 17 | Synthesis and characterization of LiNi1-x-yCoxMnyO2 as the cathode materials of secondary lithium batteries 显示文摘 | LIU Zhaolin YU Aishui LEE Jim Y | 1999 | J Power Sources1999,8182,: | 1 |
| 18 | Interfacial Issues of All Solid State Lithium Batteries显示文摘All solid state lithium battery is a promising next-generation battery system with improved cycle life,energy density,especially safety.However,its development is greatly hampered by a large impedance between the solid state electrolyte/electrode interface.How to build an ideal electrolyte/electrode interface to improve the interfacial stability and reduce the interfacial resistance is a huge challenge for improving battery performance.This paper reviews interfacial problems and introduces the formation mechanism of different interface layers between electrodes and electrolytes.In addition,the strategies for improving interfacial contact and reducing interfacial resistance are described in detail.Finally,the research directions for engineering interfaces in all solid state lithium batteries are proposed. | Wang Leidanyang Su Yunmning Liu Siyang Chen Chunguang Hu Shanming Huang Tao Yu Aishui | 2018 | Transactions of Nanjing University of Aeronautics and Astronautics2018,35,4: | 0 |
| 19 | Revealing the specific role of sulfide and nano-alumina in composite solid-state electrolytes for performance-reinforced ether-nitrile copolymers显示文摘Composite solid-state electrolytes represent a critical pathway that balances the interface compatibility and lithium-ion conductivity in all-solid-state batteries.The quest for stable and highly ion-conductive combinations between polymers and fillers is vital,but blind attempts are often made due to a lack of understanding of the mechanisms involved in the interaction between polymers and fillers.Herein,we employ in-situ polymerization to prepare a polymer based on an ether-nitrile copolymer with high cathode stability as the foundation and discuss the performance enhancement mechanisms of argyrodite and nano-alumina.With 1%content of sulfide interacting with the polymer at the two-phase interface,the local enhancement of lithium-ion migration capability can be achieved,avoiding the reduction in capacity due to the low ion conductivity of the passivation layer during cycling.The capacity retention after 50cycles at 0.5 C increases from 83.5%to 94.4%.Nano-alumina,through anchoring the anions and interface inhibition functions,eventually poses an initial discharge capacity of 136.8 m A h g^(-1)at 0.5 C and extends the cycling time to 1000 h without short-circuiting in lithium metal batteries.Through the combined action of dual fillers on the composite solid-state electrolyte,promising insights are provided for future material design. | Haoyang Yuan Changhao Tian Mengyuan Song Wenjun Lin Tao Huang Aishui Yu | 2024 | Journal of Energy Chemistry2024,91,4: | 0 |