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52篇 您的检索式:作者名="Zhanliang"
    题名 作者 年代 出处 被引量
1Composite of sulfur impregnated in porous hollow carbon spheres as the cathode of Li-S batteries with high performance显示文摘Kai Zhang Qing Zhao Zhanliang Tao Jun Chen 2013Nano Research2013,6,1:25
2Ni nanoparticles supported on carbon as efficient catalysts for the hydrolysis of ammonia borane显示文摘我们在在氨 borane (AB ) 的催化水解作用在碳(Ni/C ) 和他们的申请上支持的三种 Ni nanoparticles 的准备报导。三 Ni/C 催化剂从一个 Ni 金属器官的框架(Ni-MOF ) 被准备由有 KBH4 的减小的先锋,在 700 戠慥? 湥的锻烧吗?Limin Zhou Tianran Zhang Zhanliang Tao Jun Chen 2014Nano Research2014,7,5:13
3Kinetics of iron removal from metallurgical grade silicon with pressure leaching显示文摘In this paper, the kinetics of pressure leaching for purification of metallurgical grade silicon with hydrochloric acid was investigated. The effects of particle size, temperature, total pressure, and concentration of hydrochloric acid on the kinetics and mechanism of iron removal were studied. It was found that the reaction kinetic model followed the shrinking core model, and the apparent activation energy of the leaching reaction was 46.908 kJ/mol. And the apparent reaction order of iron removal with pressure leaching was 0.899. The kinetic equation was ob-tained and the mathematical model of iron removal from metallurgical grade silicon (MG-Si) was given as follows: 1-2/3x-(1-x)2/3=exp(5.1654-4811.4591/T+1.287lnp+1.046ln[C])·t/r02· The values calculated from the equation were consistent with the experimental results.YU Zhanliang XIE Keqiang MA Wenhui ZHOU Yang XIE Gang DAI Yongnian 2011Rare Metals2011,30,6:9
4Preparation of Li_4Ti_5O_(12) submicrospheres and their application as anode materials of rechargeable lithium-ion batteries显示文摘We report on the preparation of spinel Li4Ti5O12 submicrospheres and their application as anode materials of rechargeable lithium-ion batteries. The spinel Li4Ti5O12 submicrospheres are synthesized with three steps of the hydrolysis of TiCl4 to form rutile TiO2, the hydrothermal treatment of rutile TiO2 with LiOH to prepare an intermediate phase of LiTi2O4+δ, and the calcinations of LiTi2O4+δ to obtain spinel Li4Ti5O12. The as-prepared products are investigated by X-ray powder diffraction (XRD), scanning electron microscopy (SEM), and transmission electron microscopy (TEM). The diameters of Li4Ti5O12 submicrospheres with novel hierarchical microstructures are about 200–300 nm with the assembly of 20–30 nm nanoparticles. The electrochemical properties of Li4Ti5O12 submicrospheres are measured by galvanostatical discharge/charge test and cyclic voltammetry (CV). The as-prepared Li4Ti5O12 display excellent discharge/charge rate and cycling capability. A high discharge capacity of 174.3 mAh/g is obtained in the first discharge at 1 C rate. Meanwhile, there is only tiny capacity fading with nearly 100% columbic efficiency in the sequential 5–50 cycles. Moreover, lithium-ion diffusion coefficient in Li4Ti5O12 is calculated to be 1.03 × 10-7 cm2/s. The present results indicate that the as-prepared Li4Ti5O12 submicrospheres are promising anode candidates of rechargeable Li-ion batteries for high-power applications.ZHANG Ai, ZHENG ZongMin, CHENG FangYi, TAO ZhanLiang & CHEN Jun Key Laboratory of Advanced Energy Materials Chemistry, Ministry of Education College of Chemistry, Nankai University, Tianjin 300071, China 2011Science China Chemistry2011,54,6:9
5Facile synthesis and electrochemical sodium storage of CoS2 micro/nano-structures显示文摘我们报导合成和钴二硫化物的电气化学的钠存储(有各种各样的 micro/nano-structures 的公司 2) 。有 microscale 尺寸的公司 2 也被 nanoparticles 装配(经由一条灵巧的 solvothermal 线路或 nanooctahedrons 的 P 公司 2) 构造了固体(O 公司 2) 和空微观结构(H 公司 2) 由热水的方法制作了。在三形态学之中, H 公司 2 作为钠离子电池(亲族) 的阳极展出最大的分泌物能力和最好的率性能。而且, H 公司 2 交付 690 妈Xue Liu Kai Zhang Kaixiang Lei Fujun Li Zhanliang Tao Jun Chen 2016Nano Research2016,9,1:8
6Size-controlled MoS2 nanodots supported on reduced graphene oxide for hydrogen evolution reaction and sodium-ion batteries显示文摘转变金属 dichalcogenide nanodots (ND ) 收到了可观的兴趣。我们由在 oleylamine 把铝 pentachloride 和 L 半胱氨酸用作先锋为瞬间 2 ND 报导一条灵巧的自底向上的合成线路。有从 2.2 ~ 5.3 nm 的狭窄的尺寸分布的 ND 的合成,被控制反应时间定制。因为它的涂层特征, oleyalmine 导致 ND 的一致性和 monodispersity。而且, ND 综合了有大特定的表面区域提供活跃地点。Graphene 拥有突出的电导率。联合二材料的优点,因为 2D, 0D/2D 材料展出优异电气化学的性能为离子吸附,精力存储,和变换的可渗透的隧道。同样准备的瞬间 2/rGO (~ 2.2 nm ) 显示出 220 mAhroscopy 分析的一个稳定的能力。与另外的报导金属 oxide/CN composites 比较,有 TiO 2 nanoparticles 的 ultrathin CN-NSs 层的强壮的相互作用制止他们的重新叠,哪个导致 234.0 m 2 的一个大特定的表面区域吗?Weiyi Sun Pan Li Xue Liu Jiajia Shi Hongming Sun Zhanliang Tao Fujun Li Jun Chen 2017Nano Research2017,10,7:6
7Amorphous Zr(OH)4 coated LiNi0.915Co0.075Al0.01O2 cathode material with enhanced electrochemical performance for lithium ion batteries显示文摘LiNi_(0.915)Co_(0.075)Al_(0.01)O_2(NCA) with Zr(OH)_4 coating is demonstrated as high performance cathode material for lithium ion batteries(LIBs). The coated materials are synthesized via a simple dry coating method of NCA with Zr(OH)_4 powders, and then characterized with scanning electron microscopy(SEM), transmission electron microscopy(TEM) and X-ray photoelectron spectroscopy(XPS). Experimental results show that amorphous Zr(OH)_4 powders have been successfully coated on the surface of spherical NCA particles, exhibiting improved electrochemical performance. 0.50 wt% Zr(OH)_4 coated NCA delivers a capacity of 197.6 mAh/g at the first cycle and 154.3 mAh/g after 100 cycles with a capacity retention of 78.1% at 1 C rate. In comparison, the pure NCA shows a capacity of 194.6 mAh/g at the first cycle and 142.5 mAh/g after 100 cycles with a capacity retention of 73.2% at 1 C rate. Electrochemical impedance spectroscopy(EIS) results show that the coated material exhibits a lower resistance, indicating that the coating layer can efficiently suppress transition metals dissolution and decrease the side reactions at the surface between the electrode and electrolyte. Therefore, surface coating with amorphous Zr(OH)_4 is a simple and useful method to enhance the electrochemical performance of NCA-based materials for the cathode of LIBs.Zhen Zhang Pengfei Zhou Huanju Meng Chengcheng Chen Fangyi Cheng Zhanliang Tao Jun Chen 2017Journal of Energy Chemistry2017,26,3:5
8Soil erosion assessment by RUSLE with improved P factor and its validation:Case study on mountainous and hilly areas of Hubei Province,China显示文摘The Revised Universal Soil Loss Equation(RUSLE)is widely used to estimate regional soil erosion.However,quantitative impacts of soil and water conservation(SWC)measures on conservation practice factor(P)of the RUSLE remain largely unclear,especially for the mountainous and hilly areas.In this study,we improved the RUSLE by considering quantitative impacts of different SWC measures on the P factor value.The improved RUSLE was validated against the long-term(2000-2015)soil erosion monitoring data obtained from 96 runoff plots(15—35°)in mountainous and hilly areas of Hubei Province,China;the result presented a high accuracy with the determination coefficient of 0.89.Based on the erosion monitoring data of 2018 and 2019,the Root Mean Square Error of the result by the improved RUSLE was 28.0%smaller than that by the original RUSLE with decrement of 19.6%—24.0%in the average P factor values,indicating that the soil erosion modelling accuracy was significantly enhanced by the improved RUSLE.Relatively low P factor values appeared for farmlands with tillage measures(P<0.53),grasslands with engineering measures(P<0.23),woodlands with biological measures(P<0.28),and other land use types with biological measures(P<0.51).The soil erosion modulus showed a downward trend with the corresponding values of 1681.21,1673.14,1594.70,1482.40 and 1437.50 t km^(-2)a-1 in 2000,2005,2010,2015 and 2019,respectively.The applicability of the improved RUSLE was verified by the measurements in typical mountainous and hilly areas of Hubei Province,China,and arrangements of SWC measures of this area were proposed.Pei Tian Zhanliang Zhu Qimeng Yue Yi He Zhaoyi Zhang Fanghua Hao Wenzhao Guo Lin Chen Muxing Liu 2021International Soil and Water Conservation Research2021,9,3:4
9Synergistic Effect of Cation and Anion for Low-Temperature Aqueous Zinc-Ion Battery显示文摘Although aqueous zinc-ion batteries have gained great development due to their many merits,the frozen aqueous electrolyte hinders their practical application at low temperature conditions.Here,the synergistic e ect of cation and anion to break the hydrogen-bonds network of original water molecules is demonstrated by multi-perspective characterization.Then,an aqueous-salt hydrates deep eutectic solvent of 3.5 M Mg(ClO_(4))_(2)+1 M Zn(ClO_(4))_(2)is proposed and displays an ultralow freezing point of-121℃.A high ionic conductivity of 1.41 mS cm-1 and low viscosity of 22.9 mPa s at-70℃ imply a fast ions transport behavior of this electrolyte.With the benefits of the low-temperature electrolyte,the fabricated Zn||Pyrene-4,5,9,10-tetraone(PTO)and Zn||Phenazine(PNZ)batteries exhibit satisfactory low-temperature performance.For example,Zn||PTO battery shows a high discharge capacity of 101.5 mAh g^(-1)at 0.5 C(200 mA g^(-1))and 71 mAh g^(-1)at 3C(1.2 A g^(-1))when the temperature drops to-70℃.This work provides an unique view to design anti-freezing aqueous electrolyte.Tianjiang Sun Shibing Zheng Haihui Du Zhanliang Tao 2021Nano-Micro Letters2021,13,12:4
10Hydrothermal synthesis of spindle-like Li_2FeSiO_4-C composite as cathode materials for lithium-ion batteries显示文摘In this paper,we report on the preparation of Li_2FeSiO_4,sintered Li_2FeSiO_4,and Li_2FeSiO_4-C composite with spindle-like morphologies and their application as cathode materials of lithium-ion batteries.Spindle-like Li2FeSi04 was synthesized by a facile hydrothermal method with(NH_4)_2Fe(SO_4)_2 as the iron source.The spindle-like Li_2FeSiO_4 was sintered at 600 ℃ for 6 h in Ar atmosphere.Li_2FeSiO_4-C composite was obtained by the hydrothermal treatment of spindle-like Li_2FeSiO_4 in glucose solution at 190 ℃ for 3 h.Electrochemical measurements show that after carbon coating,the electrode performances such as discharge capacity and high-rate capability are greatly enhanced.In particular.Li_2FeSiO_4-C with carbon content of 7.21 wt%delivers the discharge capacities of 160.9 mAh·g^(-1) at room temperature and 213 mAh·g^(-1) at45℃(0.1 C),revealing the potential application in lithium-ion batteries.Haiyan Gao Zhe Hu Kai Zhang Fangyi Cheng Zhanliang Tao Jun Chen 2014Journal of Energy Chemistry2014,23,3:4
11Understanding electrode materials of rechargeable lithium batteries via DFT calculations显示文摘Rechargeable lithium batteries have achieved a rapid advancement and commercialization in the past decade owing to their high capacity and high power density.Different functional materials have been put forward progressively,and each possesses distinguishing structural features and electrochemical properties.In virtue of density functional theory(DFT) calculations,we can start from a specific structure to get a deep comprehension and accurate prediction of material properties and reaction mechanisms.In this paper,we review the main progresses obtained by DFT calculations in the electrode materials of rechargeable lithium batteries,aiming at a better understanding of the common electrode materials and gaining insights into the battery performance.The applications of DFT calculations involve in the following points of crystal structure modeling and stability investigations of delithiated and lithiated phases,average lithium intercalation voltage,prediction of charge distributions and band structures,and kinetic studies of lithium ion diffusion processes,which can provide atomic understanding of the capacity,reaction mechanism,rate capacity,and cycling ability.The results obtained from DFT are valuable to reveal the relationship between the structure and the properties,promoting the design of new electrode materials.Tianran Zhang Daixin Li Zhanliang Tao Jun Chen 2013Progress in Natural Science:Materials International2013,23,3:2
12Recent progress and strategies toward high performance zinc-organic batteries显示文摘Energy sustainable development has stimulated the pursuit of an eco-friendly energy storage system.Carbon peak and neutrality targets oriented energy storage development will guide the way of further studies on batteries system.However,conventional batteries system(lead-acid batteries,lithium-ion batteries)based on ungreen transition metal oxide,flammable electrolytes or hazardous metals cannot keep pace with the development of society sooner or later.Thus,vast explorations on the advanced rechargeable battery systems were conducted.Compared with other battery systems,zinc ion battery systems with inherent safety,low cost were widely investigated.Especially,the zinc organic batteries based on the eco-efficiency organic cathodes were promising alternative advanced batteries for future energy storage systems.Therefore,various organics and different electrochemistry mechanisms were explored in the zinc batteries system.Herein,a timely review on elaborate analysis about functional groups,fundamentals,progress accompanied by the discussion on the four core issues:voltage,capacity,rate performance,cycle life was presented.Specifically,aiming at these issues,three levels of solution strategies:materials design concepts,morphology structure optimization and electrolyte environment were summarized and proposed for the development and innovation of zinc organic batteries.Shibing Zheng Qiaoran Wang Yunpeng Hou Lin Li Zhanliang Tao 2021Journal of Energy Chemistry2021,30,12:2
13A novel PMA/PEG-based composite polymer electrolyte for all-solid-state sodium ion batteries显示文摘In recent years,development of all-solid-state batteries has become a promising approach to improve the safety of batteries.Herein,we report the preparation of a new composite polymer electrolyte (CPE)for use in all-solid-state sodium ion batteries.The CPE comprising of poly(methacrylate)(PMA),poly(ethylene glycol)(PEG),α-Al2O3 with acidic surface sites,and NaClO4 exhibited high ionic conductivity (1.46×10^-4 S·cm^-1 at 70℃),wide electrochemical stability window (4.5V vs.Na+/Na),and good mechanical strength.With the introduction of the prepared CPE and Na3V2(PO4)3,the final all-solid-state sodium ion batteries showed good rate and cycle performance,with a high reversible capacity of 85mAh·g^-1 when operated at 0.5C (1C=118mA·g^-1)and 94.1%capacity retention rate after 350cycles at 70℃.Our work provides a novel solid electrolyte for the development of all-solid-state sodium ion batteries.Xuejing Zhang Xingchao Wang Shuang Liu Zhanliang Tao Jun Chen 2018Nano Research2018,11,12:2
14Molecular Engineering Design for High-Performance Aqueous Zinc-Organic Battery显示文摘Novel small sulfur heterocyclic quinones(6a,16adihydrobenzo[b]naphtho[2′,3′:5,6][1,4]dithiino[2,3-i]thianthrene-5,7,9,14,16,18-hexaone(4S6Q)and benzo[b]naphtho[2′,3′:5,6][1,4]dithiino[2,3-i]thianthrene-5,9,14,18-tetraone(4S4Q))are developed by molecule structural design method and as cathode for aqueous zincorganic batteries.The conjugated thioether(–S–)bonds as connected units not only improve the conductivity of compounds but also inhibit their dissolution by both extendedπ-conjugated plane and constructed flexible molecular skeleton.Hence,the Zn//4S6Q and Zn//4S4Q batteries exhibit satisfactory electrochemical performance based on 3.5 mol L-1(M)Zn(ClO4)2electrolyte.For instance,the Zn//4S6Q battery obtains 240 and 208.6 mAh g^(-1)of discharge capacity at 150 mA g^(-1)and 30 A g^(-1),respectively.The excellent rate capability is ascribed to the fast reaction kinetics.This system displays a superlong life of 20,000 cycles with no capacity fading at 3 A g^(-1).Additionally,the H+-storage mechanism of the 4S6Q compound is demonstrated by ex situ analyses and density functional theory calculations.Impressively,the battery can normally work at-60℃benefiting from the anti-freezing electrolyte and maintain a high discharge capacity of 201.7 mAh g^(-1),which is 86.2%of discharge capacity at 25℃.The cutting-edge electrochemical performances of these novel compounds make them alternative electrode materials for Zn-organic batteries.Tianjiang Sun Weijia Zhang Qingshun Nian Zhanliang Tao 2023Nano-Micro Letters2023,15,3:2
15Study of high power Ka-band rectangular double-grating sheet beam BWO显示文摘Zhang Yabin Gong Yubin Wang Zhanliang 2014IEEE Trans on Plasma Sci2014,42,6:1
16Performance of an acti- vated carbon honeycomb supported V2O5catalyst in simulta- neous SO2 and NO removal 显示文摘Wang Yanli Liu Zhenyu ZhanLiang 2004Chemical Engineering Sci- ence2004,59,:1
17The conditions for stable sheet electron beams transport in periodic permanent magnet fields显示文摘Wang Zhanliang Gong Yubin Wei Yanyu 2010Journal of Infrared Millimeter and Terahertz Waves2010,31,6:1
18A highly efficient cathode catalyst γ-MnO_2@CNT composite for sodium-air batteries显示文摘The γ-MnO_2@CNT catalyst was prepared by in situ solid phase synthesis and first applied into sodium-air batteries(SABs). The initial discharge specific capacity of SABs with γ-MnO_2@CNT catalyst can reach 8804 mA h g^(-1) and the overpotential gap is only 140 m V, which is better than the batteries that is catalyzed by α-MnO_2@CNT and pure CNT. Besides, the batteries also exhibit excellent cycle performance, which can keep relatively stable for 246 cycles at 500 mA g^(-1) and 140 cycles at1000 mA g^(-1).Xuecen Zeng Xuejing Zhang Shuang Liu Hao Yang Zhanliang Tao Jing Liang 2019Science China Chemistry2019,62,6:1
19查看详情显示文摘Fangyi Cheng Zhanliang Tao Jing Liang 0,,:1
20SnO 2 nanoparticles@polypyrrole nanowires composite as anode materials for rechargeable lithium-ion batteries显示文摘Lifeng Cui Jian Shen Fangyi Cheng Zhanliang Tao Jun Chen 2010Journal of Power Sources2010,,:1
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