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48篇 您的检索式:作者名="Haoshen"
    题名 作者 年代 出处 被引量
1Effect of matrine on Kupffer cell activation in cold ischemia reperfusion injury of rat liver显示文摘AIM:To study the effect of matrine on activation of Kupffer cell during cold ischemia and reperfusion injury in rat orthotopic liver transplantation(OLT).Ming-KeShi Yu-DongQiu HaoShen Yi-TaoDing 2002World Journal of Gastroenterology2002,8,6:22
2Status and challenges facing representative anode materials for rechargeable lithium batteries显示文摘Rechargeable lithium batteries have been widely regarded as a revolutionary technology to store renewable energy sources and extensively researched in the recent several decades.As an indispensable part of lithium batteries,the evolution of anode materials has significantly promoted the development of lithium batteries.However,since conventional lithium batteries with graphite anodes cannot meet the ever-increasing demands in different application scenarios(such as electric vehicles and large-scale power supplies)which require high energy/power density and long cycle life,various improvement strategies and alternative anode materials have been exploited for better electrochemical performance.In this review,we detailedly introduced the characteristics and challenges of four representative anode materials for rechargeable lithium batteries,including graphite,Li_(4)Ti_(5)O_(12),silicon,and lithium metal.And some of the latest advances are summarized,which mainly contain the modification strategies of anode materials and partially involve the optimization of electrode/electrolyte interface.Finally,we make the conclusive comments and perspectives,and draw a development timeline on the four anode materials.This review aims to offer a good primer for newcomers in the lithium battery field and benefit the structure and material design of anodes for advanced rechargeable lithium batteries in the future.Liqiang Zhang Chenxi Zhu Sicheng Yu Daohan Ge Haoshen Zhou 2022Journal of Energy Chemistry2022,31,3:13
3Cation-mixing stabilized layered oxide cathodes for sodium-ion batteries显示文摘Sodium-ion batteries are promising for large-scale energy storage due to sodium's low cost and infinite abundance. The most popular cathodes for sodium-ion batteries, i.e., the layered sodium-containing oxides, usually exhibit reversible host rearrangement between P-type and O-type stacking upon charge/discharge. Herein we demonstrate that such host rearrangement is unfavorable and can be suppressed by introducing transition-metal ions into sodium layers. The electrode with stabilized P3-type stacking delivers superior rate capability, high energy efficiency, and excellent cycling performance. Owing to the cation-mixing nature, it performs the lowest lattice strain among all reported cathodes for sodium-ion batteries. Our findings highlight the significance of a stable host for sodium-ion storage and moreover underline the fundamental distinction in material design strategy between lithium-and sodium-ion batteries.Shaohua Guo Yang Sun Pan Liu Jin Yi Ping He Xiaoyu Zhang Yanbei Zhu Ryosuke Senga Kazu Suenaga Mingwei Chen Haoshen Zhou 2018Science Bulletin2018,63,6:5
4In-situ/operando characterization techniques in lithium-ion batteries and beyond显示文摘Nowadays,in-situ/operando characterization becomes one of the most powerful as well as available means to monitor intricate reactions and investigate energy-storage mechanisms within advanced batteries.The new applications and novel devices constructed in recent years are necessary to be reviewed for inspiring subsequent studies.Hence,we summarize the progress of in-situ/operando techniques employed in rechargeable batteries.The members of this large family are divided into three sections for introduction,including bulk material,electrolyte/electrode interface and gas evolution.In each part,various energy-storage systems are mentioned and the related experimental details as well as data analysis are discussed.The simultaneous strategies of various in-situ methods are highlighted as well.Finally,current challenges and potential solutions are concluded towards the rising influence and enlarged appliance of in-situ/operando techniques in the battery research.Haoyu Li Shaohua Guo Haoshen Zhou 2021Journal of Energy Chemistry2021,30,8:5
5Halogen conversion-intercalation chemistry promises high energy density Li-ion battery显示文摘The state-of-art lithium-ion batteries(LIBs)have achieved great commercial success during the past decades.The intercalation mechanisms in graphite anode and lithium transition metal oxide enabled its long-term stability in organic electrolytes.The classic electrolyte formula of lithium hexafluorophosphate(Li PF6)in carbonate solvents provided a benign solid electrolyte interphase(SEI)on the electrode surface.Subsequent researches on materials and electrolytes have improved the electrochemical stability and energy density for LIBs.Nevertheless,their adoptions,especially in electric vehicles and power grid have been obstructed owing to the safety concerns and environmental impact.The flammable carbonate solvents are easy to trigger fire and cause cell failure.The common used LiPF6 is sensitive to moisture which increases much difficulty to eliminate trace water in practical application.Huijun Yang Haoshen Zhou 2019Science Bulletin2019,64,19:2
6In situ X-ray diffraction and thermal analysis of LiNi0.8Co0.15Al0.05O2 synthesized via co-precipitation method显示文摘LiNi_(0.8)Co_(0.15)Al_(0.05)O_2(NCA) material is successfully synthesized with a modified co-precipitation method,in which NH_3·H_2O and EDTA are used as two chelating agents. The obtained LiNi_(0.8)Co_(0.15)Al_(0.05)O_2 material has well-defined layered structure and uniform element distribution, which reveals an enhanced electrochemical performance with a capacity retention of 97.9% after 100 cycles at 0.2 C, and reduced thermal runaway from the isothermal calorimetry test. In situ X-ray diffraction(XRD) was employed to capture the structural changes during the charge–discharge process. The reversible evolutions of lattice parameters(a, b, c, and V) further verify the structural stability.Na Zhang Xiaoyu Zhang Erbo Shi Shiyong Zhao Kezhu Jiang Di Wang Pengfei Wang Shaohua Guo Ping He Haoshen Zhou 2018Journal of Energy Chemistry2018,27,6:2
7Design and Synthesis of Self-ordered Mesoporous Nanocomposite through Controlled in-situ Crystallization显示文摘Li Donglin Zhou Haoshen Honma Itaru 2004Nature Materials2004,3,:1
8An Energy Storage Principle using Bipolar Porous Polymeric Frameworks显示文摘Ken Sakaushi Georg Nickerl Florian M. Wisser Daisuke Nishio‐Hamane Eiji Hosono Haoshen Zhou Stefan Kaskel Jürgen Eckert 2012Angew. Chem. Int. Ed2012,,31:1
9Accelerating non‐contrast‐enhanced MR angiography with inflow inversion recovery imaging by skipped phase encoding and edge deghosting (SPEED)显示文摘ZhengChang Qing‐SanXiang HaoShen Fang‐FangYin 2010J Magn Reson Imaging2010,,3:1
10显示文摘Wei Mingdeng Konishi Yoshinari Zhou Haoshen 2006Journal of Materials Chemistry2006,16,:1
11Formation of nanotubes TiO2 from layered titanate particles by a soft chemical process显示文摘 Yoshinari Konishia Haoshen Zhou 2005Solid State Communications2005,,133:1
12Tuning Interface Bridging Between MoSe2 and Three‑Dimensional Carbon Framework by Incorporation of MoC Intermediate to Boost Lithium Storage Capability显示文摘Interface engineering has been widely explored to improve the electrochemical performances of composite electrodes,which governs the interface charge transfer,electron transportation,and structural stability.Herein,MoC is incorporated into MoSe2/C composite as an intermediate phase to alter the bridging between MoSe2-and nitrogen-doped three-dimensional(3D)carbon framework as MoSe2/MoC/N–C connection,which greatly improve the structural stability,electronic conductivity,and interfacial charge transfer.Moreover,the incorporation of MoC into the composites inhibits the overgrowth of MoSe2 nanosheets on the 3D carbon framework,producing much smaller MoSe2 nanodots.The obtained MoSe2 nanodots with fewer layers,rich edge sites,and heteroatom doping ensure the good kinetics to promote pseudo-capacitance contributions.Employing as anode material for lithium-ion batteries,it shows ultralong cycle life(with 90%capacity retention after 5000 cycles at 2 A g−1)and excellent rate capability.Moreover,the constructed LiFePO4//MoSe2/MoC/N–C full cell exhibits over 86%capacity retention at 2 A g−1 after 300 cycles.The results demonstrate the effectiveness of the interface engineering by incorporation of MoC as interface bridging intermediate to boost the lithium storage capability,which can be extended as a potential general strategy for the interface engineering of composite materials.Jing Chen Yilin Luo Wenchao Zhang Yu Qiao Xinxin Cao Xuefang Xie Haoshen Zhou Anqiang Pan Shuquan Liang 2020Nano-Micro Letters2020,12,12:1
13Enhancing the performance of li-ion batteries by carbon-coating: present and future显示文摘LI Huiqiao ZHOU Haoshen 2012Chemical Communications2012,48,:1
14显示文摘Li Donglin Zhou Haoshen Itaru H 2004Nature Materials2004,3,:1
15Electrolyte design principles for low-temperature lithium-ion batteries显示文摘Alongside the pursuit of high energy density and long service life,the urgent demand for low-temperature performance remains a long-standing challenge for a wide range of Li-ion battery applications,such as electric vehicles,portable electronics,large-scale grid systems,and special space/seabed/military purposes.Current Li-ion batteries suffer a major loss of capacity and power and fail to operate normally when the temperature decreases to-20℃.This deterioration is mainly attributed to poor Li-ion transport in a bulk carbonated ester electrolyte and its derived solid–electrolyte interphase(SEI).In this mini-review discussing the limiting factors in the Li-ion diffusion process,we propose three basic requirements when formulating electrolytes for low-temperature Liion batteries:low melting point,poor Liþaffinity,and a favorable SEI.Then,we briefly review emerging progress,including liquefied gas electrolytes,weakly solvating electrolytes,and localized high-concentration electrolytes.The proposed novel electrolytes effectively improve the reaction kinetics via accelerating Li-ion diffusion in the bulk electrolyte and interphase.The final part of the paper addresses future challenges and offers perspectives on electrolyte designs for low-temperature Li-ion batteries.Yang Yang Wuhai Yang Huijun Yang Haoshen Zhou 2023eScience2023,3,6:1
16Challenges of non-aqueous Li-O2 batteries: electrolytes, catalysts, and anodes显示文摘Li Fujun Zhang Tao Zhou Haoshen 2013Energy & Environmental Science2013,6,4:1
17Research Progress for the Development of Li-Air Batteries: Addressing Parasitic Reactions Arising from Air Composition显示文摘Li-air batteries are an extremely attractive technology for electrical energy storage,especially in long-range electric vehicles,owing to their high theoretical specific energy.However,many issues still exist before their practical realization.Herein,the sole complexity of electrode reaction in Li-air batteries is presented.And the critical components that influence the electrochemical performance of aprotic Li-air batteries operating in ambient air are discussed.These include the mechanisms and pathways of CO_(2)/Li_(2)CO_(3) and H_(2)O/LiOH,catalysts of CO_(2) reduction/evolution reactions,and reactions between the Li anode and air constituents.If these challenges can be solved,Li-air batteries will soon be realized for practical application.Some hot topics in field of Li-air batteries should be focused,such as the fundamental mechanism research referring to interfacial reactions of atmosphere components on porous electrode and Li metal anode,high-efficiency solid catalyst design,and discovery of suitable soluble redox mediators.Xueping Zhang Xiaowei Mu Sixie Yang Pengfei Wang Shaohua Guo Min Han Ping He Haoshen Zhou 2018Energy & Environmental Materials2018,1,2:1
18Synthesis of Single-crystal Manganese Dioxide Nanowires by a Soft Chemical Process 显示文摘Mingdeng W Yoshinari K Haoshen Z 2005Nanotechnology2005,16,:1
19Metallic ruthenium incorporation in the porous structure of SBA-15 using a sonochemical method 显示文摘ZHU Shenmin M ZHOU Haoshen S HIBINO Mitsuhiro 2003J Mater Chem2003,13,5:1
20Enhancing the performances of Li-ion batteries by carbon-coating: present and future显示文摘LI Huiqiao ZHOU Haoshen 2012Chemical Communications2012,48,:1
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