王接喜

教授 博士生导师 硕士生导师

入职时间:2017-02-28

所在单位:冶金与环境学院

办公地点:中南大学本部冶金馆107

学位:博士学位

毕业院校:中南大学

学科:冶金工程

曾获荣誉:

2026年首届湖南省科学技术青年英才奖

2023年第六届全国有色金属优秀青年科技奖

2022年湖南省科技创新领军人才

2021年国家优秀青年基金获得者

2020年第十八届全国高校冶金院长奖

2020年湖南省杰出青年基金获得者

2019年芙蓉学者(青年学者)

2019年湖湘青年英才

2017年国家博士后创新人才支持计划

2017年湖南省优秀博士学位论文

2015年宝钢教育基金特等奖

2015年湖南省优秀毕业生

2014年中南大学十大杰出学子

2014年中南大学拔尖创新博士生特等奖

2013年芙蓉学子-榜样力量(学术创新奖)

论文成果

当前位置: 王接喜的个人教师主页 >> 论文成果

[112] Yucen Yan, Zhangyi Xu, Gui Luo, Duo Deng, Wenjie Peng, Zhixing Wang, Wang Hay Kan, Odiljon Abdurakhmonov, Utkirjon Sharopov, Yiman Feng, Guochun Yan, Huajun Guo, Hui Duan, Guangchao Li, Xinhai Li, Xing Ou, Junchao Zheng, Jiexi Wang*, Tailoring cobalt gradient distribution toward practical Ni95 cathode for high-energy-density lithium-ion battery, Joule, 2026, 10, 102229.

[111] Yiman Feng, Zhixing Wang, Hongling Yi, Yucen Yan, Gui Luo, Duo Deng, Wenjie Peng, Xiaoping Zhou, Wenchao Zhang, Hui Duan, Feixiang Wu, Jiexi Wang*, Precisely modulating Li2CO3 coverage on Ni-rich cathode boosts sulfide solid-state lithium battery performance, Chem, 2026, 12, 102775

[110] Menghao Ren, Sichen Jiao, Yajun Zhao, Luyu Gan, Zhixing Wang, Fuzhong Wu, Jiexi Wang*, Xiqian Yu*, Hong Li, Thermal Decomposition Mechanisms and Inherent Stability Differences Between O2- and O3-Lithium-Rich Manganese-Based Oxide Cathodes, Advanced Functional Materials, 2026, 36, e30009.

[109] Yiman Feng, Zhixing Wang, Gui Luo, Duo Deng, Wenjie Peng, Wenchao Zhang, Hui Duan, Feixiang Wu, Xing Ou, Junchao Zheng, Jiexi Wang*, Exploring stacking pressure-induced mechanical failure of a Ni-rich cathode in sulfide solid-state batteries, Chemical Science, 2026, 17, 4601-4611.

[108] Songlin Liu; Qiyang Hu; Xiaopeng Song; Guangchao Li; Xunhui Xiong; Bichao Wu; Zhixing Wang; Xiaoping Zhou; Jiexi Wang*, Stepwise recovery of valuable elements and regeneration of cryolite from electrolytic aluminum slag. Separation and Purification Technology, 2026, 382, 135984.

[107] Songlin Liu; Yuhang Fang; Xiaopeng Song; Zhixing Wang; Qiyang Hu; Xunhui Xiong; Faping Zhong; Bichao Wu; Jiexi Wang*, Selective recovery of lithium from waste aluminum electrolyte and regeneration of potassium-rich aluminum electrolyte. Waste Management, 2026, 215, 115422.

[106] Jiping Sun; Bichao Wu; Guangchao Li; Zhixing Wang; Xinhai Li; Huajun Guo; Guochun Yan; Hui Duan; Wenchao Zhang; Min Liu; Jiexi Wang*, Catalyst and gas diffusion electrode design toward C–N coupling for urea electrosynthesis. eScience, 2026, 6, 100425.

[105] Hongling Yi; Jiashi Wang; Gui Luo; Xin Yu; Zihan Yan; Tingting Zheng; Zhixing Wang; Wenjie Peng; Guangchao Li; Bichao Wu; Wenchao Zhang; Feixiang Wu; Junchao Zheng; Jiexi Wang*, Decoupling ambient air-induced degradation mechanism of LiNiO2 during short-time storage. Journal of Energy Chemistry, 2026, 115, 42-53.

[104] Jiping Sun; Hong Zhang; Bichao Wu*; Guangchao Li; Wenchao Zhang; Feixiang Wu; Sheng Yang; Min Liu*; Jiexi Wang*, Gradient pore engineering enables decoupled gas–liquid transport for highly-efficient CO2 electroreduction. Science Bulletin, 2026, 71, 40-44.

[103] Yuqing Dai; Zihan Hou; Gui Luo; Duo Deng; Wenjie Peng; Zhixing Wang; Huajun Guo; Xinhai Li; Guochun Yan; Hui Duan; Wenchao Zhang; Jiexi Wang*, Exploring of the upper limit of nickel content in cathode materials for PEO-based solid-state batteries. Chinese Chemical Letters, 2026, 111157.

[102] Mingqiang Cheng, Juanjian Ru,* Shukai Miao, Yixin Hua, Qibo Zhang, Cunying Xu, Zhipeng Zhou, Ding Wang,* Wenchao Zhang, Jiexi Wang*, Zaiping Guo*, Hydration equilibrium-controlled cation-anion coordination competition for precise recovery of all valuable metals from spent lithium-ion batteries, Energy & Environmental Science, 2025, 18, 10473-10482.

[101] Jindan Wang, Jianqiang Chen, Bichao Wu, Guangchao Li, Zhixing Wang, Xing Ou, Feixiang Wu, Junchao Zheng, Xiaobo Zheng, Jiexi Wang*, Coupling high-throughput DFT Calculation and machine learning for dopant classification in nickel-based layered cathodes, Energy Storage Materials, 2025, 83, 104728

[100] Guo, Zhihao, Jiexi Wang*, Xinhai Li*, Zhixing Wang, Huajun Guo, Wenjie Peng, Guochun Yan, Guangchao Li, Xiaobao Zhang, Ning Wang, Juanyu Yang*, Xiaowei Huang*, Progress and Perspectives of Garnet-Based Solid-State Lithium Metal Batteries: Toward Low Resistance, High Energy Density and Improved Cycling Capability." Electrochemical Energy Reviews, 2025, 8, 8.

[99] Jiping Sun, Bichao Wu, Zhixing Wang, Huajun Guo, Guochun Yan, Hui Duan, Guangchao Li, Jiexi Wang, Solvent Mediated Interfacial Microenvironment Design for High-Performance Electrochemical CO2 Reduction to C2+ Products, Small, 2025, 21, 2409186.

[98] Ziyang Zhan, Wenjie Peng, Lin Yuan, Yucen Yan, Zhixing Wang, Huajun Guo, Guochun Yan, Xiaoping Zhou, Guangchao Li, Hui Duan, Wenchao Zhang, Feixiang Wu, Jiexi Wang*, Quantifying and Inhibiting Manganese Dissolution in Li-Rich Mn-Based Cathode Materials, ACS Nano, 2025, 19, 40258-40270.

[97] Yuan, L., Peng, W., Zhan, Z., Wang, J., Feng, Y., Yan, Y., Yu, R., Wang, C., Wang, Z., Guo, H., Yan, G., Li, G., Duan, H.*, Wang, J.*, Sun, X.*, Enhancing Ionic Transport at Primary Interparticle Boundaries of Polycrystalline Lithium-Rich Oxide in All-Solid-State Batteries. Angewandte Chemie International Edition, 2025, 64, e202508605.

[96] Jiping Sun; Bichao Wu; Zhixing Wang; Huajun Guo; Guochun Yan; Hui Duan; Guangchao Li; Ying Wang*; Jiexi Wang*, Rational catalyst layer design enables tailored transport channels for efficient CO2 electrochemical reduction to multi-carbon products. Energy & Environmental Science 2025, 18, (2), 1027-1037.

[95] Zhilong Xu; Long Ye; Yun Yu; Haiqiang Gong; Zhiming Xiao; Lei Ming*; Bao Zhang; Zhen Yao*; Jiexi Wang*; Xing Ou*, A Green and Efficient Recycling Strategy for Spent Lithium‐Ion Batteries in Neutral Solution Environment. Angewandte Chemie International Edition 2025, e202414899

[94] Junjie Wang; Yucen Yan; Zilan Zhao; Jiayi Li; Gui Luo; Duo Deng; Wenjie Peng; Mingxia Dong; Zhixing Wang; Guochun Yan; Huajun Guo; Hui Duan; Lingjun Li; Shihao Feng; Xing Ou; Junchao Zheng; Jiexi Wang*, Promoting homogeneous tungsten doping in LiNiO2 through a grain boundary phase induced by excessive lithium. Advanced Powder Materials 2025, 4, (1), 100248.

[93] H Huang, Q Liang, G Li*, H Guo, Z Wang, G Yan, X Li, H Duan, Jiexi Wang*, Robust Spray Combustion Enabling Hierarchical Porous Carbon-Supported FeCoNi Alloy Catalyst for Zn–Air Batteries, ACS Applied Materials & Interfaces 2025, 17, (5), 7763–7772.

[92] Mingjiao Lu; Zhixing Wang; Gui Luo; Huajun Guo; Xinhai Li; Guochun Yan; Qihou Li; Xianglin Li; Ding Wang; Jiexi Wang*, Boosting the performance of LiNi0.90Co0.06Mn0.04O2 electrode by uniform Li3PO4 coating via atomic layer deposition. Chinese Chemical Letters 2024, 35, (5), 108638.

[91] Xiangkang Jiang; Zhixing Wang; Hong Dong; Xiang Zhang; Jin Hu; Manman Chu; Yanshuai Hong; Lei Xu; Wenjie Peng; Xiqian Yu; Jiexi Wang*, An in-depth understanding of Al doping homogeneity affecting the performance of LiCoO2 at cut-off voltage over 4.6 V. Chinese Chemical Letters 2024, 35, (12), 109553.

[90] Hongrui Huang; Qianqian Liang; Yanmei Nie; Huajun Guo; Zhixing Wang; Guochun Yan; Xinhai Li; Wenjie Peng; Hui Duan; Jiexi Wang*, Bimetal organic framework derived CoM@N–C composites as bifunctional oxygen catalysts for Zn-air batteries. Materials Today Energy 2024, 43, 101576.

[89] Hongrui Huang; Qianqian Liang; Huajun Guo; Zhixing Wang; Guochun Yan; Feixiang Wu*; Jiexi Wang*, Spray Pyrolysis Regulated FeCo Alloy Anchoring on Nitrogen–Doped Carbon Hollow Spheres Boost the Performance of Zinc–Air Batteries. Small 2024, 20, (23), 2310318.

[88] Zihan Hou; Lisheng Guo; Xianlong Fu; Hongxian Zheng; Yuqing Dai; Zhixing Wang; Hui Duan; Mingxia Dong; Wenjie Peng; Guochun Yan; Jiexi Wang*, Spray pyrolysis feasibility of tungsten substitution for cobalt in nickel-rich cathode materials. International Journal of Minerals, Metallurgy and Materials 2024, 31, (10), 2244-2252.

[87] Yiman Feng; Zhixing Wang; Duo Deng; Guochun Yan; Huajun Guo; Xinhai Li; Wenjie Peng; Hui Duan; Jiexi Wang*, Ni-Rich Layered Oxide Cathodes/Sulfide Electrolyte Interface in Solid-State Lithium Battery. ACS Applied Materials & Interfaces 2024, 16, (29), 37363-37378.

[86] Shihao Feng; Zhixing Wang; Guoshang Zhang; Pengfei Yue; Wengao Pan; Qiongqiong Lu; Huajun Guo; Xinhai Li; Guochun Yan; Jiexi Wang*, Theoretical calculations of the performance of Li7NbO6 and its doped Phases as solid electrolytes. Physical Chemistry Chemical Physics 2024, 26, (40), 25881-25889.

[85] Yuqing Dai; Jiaxu Tan; Zihan Hou; Bianzheng You; Gui Luo; Duo Deng; Wenjie Peng; Zhixing Wang; Huajun Guo; Xinhai Li; Guochun Yan; Hui Duan; Ying Wang; Feixiang Wu; Jiexi Wang*, Customized Li+ Solvation Sheath at the Poly(ethylene oxide)-Based Electrolyte/Ultrahigh-Nickel Cathode Interface toward Room-Temperature Solid-State Lithium Batteries. ACS Nano 2024, 18, (33), 22518-22532.

[84] Yuqing Dai; Zihan Hou; Gui Luo; Duo Deng; Wenjie Peng; Zhixing Wang; Huajun Guo; Xinhai Li; Guochun Yan; Hui Duan; Wenchao Zhang; Jiexi Wang*, Improving the interfacial stability of ultrahigh-nickel cathodes with PEO-based electrolytes by targeted chemical reactions. Chemical Science 2024, 15, (32), 12964-12972.

[83] Junhao Dai; Zhu He; Xinhai Li; Guochun Yan; Hui Duan; Guangchao Li; Zhixing Wang; Huajun Guo; Wenjie Peng; Jiexi Wang, Ultrafast spray pyrolysis for synthesizing uniform Mg-doped LiNi0.9Co0.05Mn0.05O2. Chinese Chemical Letters 2024, 110063.

[82] B. Z. You; Z. X. Wang; D. Wang*; G. Luo; D. Deng; G. C. Yan; H. J. Guo; X. H. Li; W. J. Peng; M. X. Dong; Jiexi Wang*, Preparation of low cobalt-doped LiNiO2 materials by the spray pyrolysis method, Progress in Natural Science-Materials International 33 (2023) 425-432.

[81] Songlin Liu; Zhixing Wang; Ding Wang; Huajun Guo; Guochun Yan; Guangchao Li; Wenjie Peng; Xinhai Li; Jiexi Wang*, Simultaneous double membrane electrolysis of sodium sulfate solution and preparation of hydroxide precursor for layered cathode materials, Journal of Cleaner Production 248 (2023) 139272.

[80] Bianzheng You, Zhixing Wang, Yijiao Chang, Wei Yin, Zhengwei Xu, Yuexi Zeng, Guochun Yan*, Jiexi Wang*, Multi-scale boron penetration toward stabilizing nickel-rich cathode, Fundamental Research, 3 (2023) 618-626.

[79] Ning Chen, Hongjie Liu, Chunhua Yang, Hongzhen Liu, Jiayao Chen, Yuanshen Dai, Peng Yang, Yuexia Feng, Weihua Gui, Wenjie Peng, Jiexi Wang, A multi-particle cellular automaton modeling method for grain dynamics evolution of nickel-rich cathode material, Materials Today Energy, 35 (2023) 101291.

[78] Shihao Feng, Zhixing Wang, Huajun Guo, Xinhai Li, Guochun Yan, Qihou Li, Jiexi Wang*, Lithium-rich diamond-like solid electrolytes for lithium batteries, Electrochimica Acta, 439 (2023) 141637.

[77] Zhihao Guo, Qihou Li, Xinhai Li, Zhixing Wang, Huajun Guo, Wenjie Peng, Guangchao Li, Guochun Yan, Jiexi Wang*, Uniform Densification of Garnet Electrolyte for Solid-State Lithium Batteries, Small Methods, (2023)

[76] Zhihao Guo, Xinhai Li, Zhixing Wang, Huajun Guo, Wenjie Peng, Guangchao Li, Guochun Yan, Qihou Li*, Jiexi Wang*, Revealing the potential of apparent critical current density of Li/garnet interface with capacity perturbation strategy, Journal of Energy Chemistry, 79 (2023) 56-63

[75] Xinxin Tan, Wenjie Peng, Meng Wang, Gui Luo, Zhixing Wang, Guochun Yan, Huajun Guo, Qihou Li, Jiexi Wang*, Al, Zr dual-doped cobalt-free nickel-rich cathode materials for lithium-ion batteries, Progress in Natural Science: Materials International, 33 (2023) 108-115

[74] Bianzheng You, Jiping Sun, Yu Jing, Guochun Yan, Huajun Guo, Zhixing Wang, Ding Wang, Wenjie Peng, Qihou Li, Jiexi Wang, A Fresh One-Step Spray Pyrolysis Approach to Prepare Nickel-Rich Cathode Material for Lithium-Ion Batteries, Acs Applied Materials & Interfaces, (2023) 14587-14595

[73] Xinxin Tan, Wenjie Peng, Gui Luo, Zhengwei Xu, Bianzheng You, Xibin Lu, Ning Chen, Jiexi Wang*, Chemical and structural evolution during solid-state synthesis of cobalt-free nickel-rich layered oxide cathode, Materials Today Energy, 29 (2022) 101114.

[72] S. A. Feng; Z. X. Wang; H. J. Guo; X. H. Li; G. C. Yan; Q. H. Li*; Jiexi Wang*, Synergy of non-lithium cation doping and the lithium concentration affecting lithium ion transport in solid electrolytes. Journal of Materials Chemistry A 2022, 10, (35), 18087-18094.

[71] Xinxin Tan; Wenjie Peng; Zhixing Wang; Huajun Guo; Xibin Lu; Chengwei Deng; Sheng Yang; Jiexi Wang*, A new boundary condition forging the unprecedented self-consistence of galvanostatic intermittent titration technique. Solid State Ionics 2022, 374, 115816.

[70] Z. Y. Feng; W. J. Peng; Z. X. Wang; H. J. Guo; X. H. Li; G. C. Yan; Jiexi Wang*, Review of silicon-based alloys for lithium-ion battery anodes. International Journal of Minerals Metallurgy and Materials 2021, 28, (10), 1549-1564.

[69] Jin Leng; Jiapei Wang; Wenjie Peng; Zilong Tang; Shengming Xu; Yong Liu; Jiexi Wang*, Highly-Dispersed Submicrometer Single-Crystal Nickel-Rich Layered Cathode: Spray Synthesis and Accelerated Lithium-Ion Transport. Small 2021, 17, (14), 2006869.

[68] Yanmei Nie; Lei Tan; Guangchao Li; Sanghao Li; Jun Yan*; Jiexi Wang*, Immobilizing polysulfide jointly via chemical absorbing and physical blocking in polytungstates-embedded carbon nanofibers. Journal of Energy Chemistry 2021, 57, 206-211.

[67] Jiexi Wang; Zhiliang Yan; Guochun Yan; Huajun Guo; Xinhai Li; Zhixing Wang; Xiaomin Wang; Zhewei Yang*, Spiral Graphene Coupling Hierarchically Porous Carbon Advances Dual-Carbon Lithium Ion Capacitor. Energy Storage Materials 2021, 38, 528-534.

[66] Yuqi Wu; Xinhai Li; Guochun Yan; Zhixing Wang; Huajun Guo; Yong Ke; Lijue Wu; Haikuo Fu; Jiexi Wang*, Incorporating multifunctional LiAlSiO4 into polyethylene oxide for high-performance solid-state lithium batteries. Journal of Energy Chemistry 2021, 53, 116-123.

[65] Yi Yan; Huajun Guo; Zhixing Wang; Xinhai Li; Guochun Yan; Jiexi Wang*, Electrospinning-Enabled Si/C Nanofibers with Dual Modification as Anode Materials for High-Performance Lithium-Ion Batteries. Acta Metallurgica Sinica-English Letters 2021, 34, (3), 329-336.

[64] B. You; Z. Wang; F. Shen; Y. Chang; W. Peng; X. Li; H. Guo; Q. Hu; C. Deng; S. Yang; G. Yan; Jiexi Wang*, Research Progress of Single-Crystal Nickel-Rich Cathode Materials for Lithium Ion Batteries. Small Methods 2021, 5, (8), e21002342100234.

[63] Yu Zhou; Shihao Feng; Pengfei Zhu; Huajun Guo; Guochun Yan; Xinhai Li; Mingru Su; Yunjian Liu; Zhixing Wang; Jiexi Wang*, Self-sacrificial-reaction guided formation of hierarchical electronic/ionic conductive shell enabling high-performance nano-silicon anode. Chemical Engineering Journal 2021, 415, 128998.

[62] Xiqiang Guo; Wenjie Peng; Yuqi Wu; Huajun Guo; Zhixing Wang; Xinhai Li; Yong Ke; Lijue Wu; Haikuo Fu; Jiexi Wang*, Al4B2O9 nanorods-modified solid polymer electrolytes with decent integrated performance. Science China-Materials 2021, 64, (2), 296-306.

[61] Xiao Xiao; Xinyu Hu; Yue Liang; Guilin Zhang; Xingyuan Wang; Yucen Yan; Xinhai Li; Guochun Yan; Jiexi Wang*, Anchoring NiCo2O4 nanowhiskers in biomass-derived porous carbon as superior oxygen electrocatalyst for rechargeable Zn-air battery. Journal of Power Sources 2020, 476, 228684.

[60] Lei Tan; Shihao Feng; Xinhai Li; Zhixing Wang; Wenjie Peng; Tiancheng Liu; Guochun Yan; Lingjun Li; Feixiang Wu; Jiexi Wang*, Oxygen-induced lithiophilicity of tin-based framework toward highly stable lithium metal anode. Chemical Engineering Journal 2020, 394, 124848.

[59] Shuliang Luo; Huajun Guo; Shihao Feng; Zhixing Wang; Xinhai Li; Wenjie Peng; Guochun Yan; Jiexi Wang*, Clearing surficial charge-transport obstacles to boost the performance of lithium-rich layered oxides. Chemical Engineering Journal 2020, 399, 125142.

[58] Tiancheng Liu; Zezhou Lin; Dong Wang; Man Zhang; Qiyang Hu; Lei Tan; Yingpeng Wu*; Xi Zhang; Haitao Huang*; Jiexi Wang*, Aluminum electrolysis derivative spent cathodic carbon for dendrite-free Li metal anode. Materials Today Energy 2020, 17, 100465.

[57] Guangchao Li; Zhoulan Yin; Bianzheng You; Yuqing Dai; Huajun Guo; Zhixing Wang; Guochun Yan; Jiexi Wang*, Accurate regulation of pore distribution and atomic arrangement enabling highly efficient dual-carbon lithium ion capacitors. Journal of Materials Chemistry A 2020, 8, (42), 22230-22239.

[56] Yu-Qing Dai; Guang-Chao Li; Xin-Hai Li; Hua-Jun Guo; Zhi-Xing Wang; Guo-Chun Yan; Jiexi Wang*, Ultrathin porous graphitic carbon nanosheets activated by alkali metal salts for high power density lithium-ion capacitors. Rare Metals 2020, 39, (12), 1364-1373.

[55] Y. Liu, Q. Hu, J. Zhong, Z. Wang, H. Guo, G. Yan, X. Li, W. Peng, Jiexi Wang*, A Renewable Sedimentary Slurry Battery: Preliminary Study in Zinc Electrodes, iScience 2020, 23, 101821.

[54] G. Li, Z. Yin, Y. Dai, B. You, H. Guo, Z. Wang, G. Yan, Y. Liu, Jiexi Wang*, Graphitic nanorings for super-long lifespan lithium-ion capacitors, Nano Research 2020, 13, 2909-2916.

[53] Z. Xi, Z.X. Wang, W.J. Peng, H.J. Guo, Jiexi Wang*, Effect of copper and iron substitution on the structures and electrochemical properties of LiNi0.8Co0.15Al0.05O2 cathode materials, Energy Science & Engineering, 8 (2020) 1868-1879.

[52] H. Wu, X. Li, Z. Wang, H. Guo, W. Peng, Q. Hu, G. Yan, Jiexi Wang*, Revealing the fake initial coulombic efficiency of spinel/layered Li-rich cathode materials, Electrochimica Acta, 347 (2020) 136279.

[51] L. Tan, X. Li, M. Cheng, T. Liu, Z. Wang, H. Guo, G. Yan, L. Li, Y. Liu, Jiexi Wang*, In-situ tailored 3D Li2O@Cu nanowires array enabling stable lithium metal anode with ultra-high coulombic efficiency, Journal of Power Sources, 463 (2020) 228178.

[50] L. Tan, S. Feng, X. Li, Z. Wang, W. Peng, T. Liu, G. Yan, L. Li, F. Wu, Jiexi Wang*, Oxygen-induced lithiophilicity of tin-based framework toward highly stable lithium metal anode, Chemical Engineering Journal, 394 (2020) 124848.

[49 ] M. Yu, Z. Yin, G. Yan, Z. Wang, H. Guo, G. Li, Y. Liu, L. Li, Jiexi Wang*, Synergy of interlayer expansion and capacitive contribution promoting sodium ion storage in S, N-Doped mesoporous carbon nanofiber, Journal of Power Sources 449 (2020) 227514.

[48] X. Xiao, X. Li, Z. Wang, G. Yan, H. Guo, Q. Hu, L. Li, Y. Liu, Jiexi Wang*, Robust template-activator cooperated pyrolysis enabling hierarchically porous honeycombed defective carbon as highly-efficient metal-free bifunctional electrocatalyst for Zn-air batteries, Applied Catalysis B: Environmental 265 (2020) 118603.

[47] G. Li, Y. Huang, Z. Yin, H. Guo, Y. Liu, H. Cheng, Y. Wu, X. Ji, Jiexi Wang*, Defective synergy of 2D graphitic carbon nanosheets promotes lithium-ion capacitors performance, Energy Storage Materials 24 (2020) 304.

[46] Y. Guo, X. Li, Z. Wang, H. Guo, Jiexi Wang*, Bifunctional Li6CoO4 serving as prelithiation reagent and pseudocapacitive electrode for lithium ion capacitors, Journal of Energy Chemistry 47 (2020) 38-45.

[45] M. Zhang, Y. Zhou, X. Ding, G. Yan, Z. Wang, Jiexi Wang*, Novel LiV(PO4)0.9F1.3 with ultrahigh rate capability and prolonged cycle life, Chemical Communications 55 (2019) 11175-11178.

[44] Z. Xi, Z. Wang, G. Yan, H. Guo, X. Li, Q. Hu, W. Peng, Jiexi Wang*, Hydrometallurgical production of LiNi0.80Co0.15Al0.05O2 cathode material from high-grade nickel matte, Hydrometallurgy 186 (2019) 30-41.

[43] D.-G. Wang, L. Tan, H. Wang, M. Song, Jiexi Wang*, G.-C. Kuang*, Multiple Covalent Triazine Frameworks with Strong Polysulfide Chemisorption for Enhanced Lithium-Sulfur Batteries, ChemElectroChem 6(10) (2019) 2777-2781.

[42] T. Liu, Q. Hu, X. Li, L. Tan, G. Yan, Z. Wang, H. Guo, Y. Liu, Y. Wu, Jiexi Wang*, Lithiophilic Ag/Li composite anodes via a spontaneous reaction for Li nucleation with a reduced barrier, Journal of Materials Chemistry A 7(36) (2019) 20911-20918.

[41] M. Yu, Z. Yin, G. Yan, Z. Wang, H. Guo, G. Li, Y. Liu, L. Li, Jiexi Wang*, Synergy of interlayer expansion and capacitive contribution promoting sodium ion storage in S, N-Doped mesoporous carbon nanofiber, Journal of Power Sources 449 (2020) 227514.

[40] Jin Leng, Zhixing Wang, Jiexi Wang*, Hong-Hui Wu, Guochun Yan, Xinhai Li, Huajun Guo, Yong Liu, Qiaobao Zhang*, Zaiping Guo*, Advances in nanostructures fabricated via spray pyrolysis and their applications in energy storage and conversion, Chemical Society Reviews 48(11) (2019) 3015-3072.

[39] Guangchao Li, Zhewei Yang, Zhoulan Yin, Huajun Guo, Zhixing Wang, Guochun Yan, Yong Liu, Lingjun Li, Jiexi Wang*, A review on non-aqueous dual-carbon lithium-ion capacitors, Journal of Materials Chemistry A 7(26) (2019) 15541-15563.

[38] Guangchao Li, Zhoulan Yin, Huajun Guo, Zhixing Wang, Guochun Yan, Zhewei Yang, Yong Liu, Xiaobo Ji, Jiexi Wang*, Metalorganic Quantum Dots and Their Graphene-Like Derivative Porous Graphitic Carbon for Advanced Lithium-Ion Hybrid Supercapacitor, Advanced Energy Materials, 9(2) (2019) 1802878.

[37] Jin Leng, Zhixing Wang, Xinhai Li, Huajun Guo, Guochun Yan, Qiqang Hu, Wenjie Peng, Jiexi Wang*, A novel dried plum-like yolk–shell architecture of tin oxide nanodots embedded into a carbon matrix: ultra-fast assembly and superior lithium storage properties, Journal of Materials Chemistry A, 7 (2019) 5803-5810.

[36] Xiaochen Ge, Xinhai Li, Zhixing Wang, Huajun Guo, Guochun Yan, Xianwen Wu, Jiexi Wang*, Facile synthesis of NaVPO4F/C cathode with enhanced interfacial conductivity towards long-cycle and high-rate sodium-ion batteries, Chemical Engineering Journal, 357 (2018) 458-462.

[35] Jiexi Wang*, Guobin Zhang, Zhaomeng Liu, Hangkong Li, Yong Liu, Zhixing Wang, Xinhai Li, Kaimin Shih*, Liqiang Mai*, Li3V(MoO4)3 as a novel electrode material with good lithium storage properties and improved initial coulombic efficiency, Nano Energy, 44 (2018) 272-278.

[34] Yu Zhou, Huajun Guo, Guochun Yan, Zhixing Wang, Xinhai Li, Zhewei Yang, Anxiong Zheng, Jiexi Wang*, Fluidized bed reaction towards crystalline embedded amorphous Si anode with much enhanced cycling stability, Chemical Communications, 54 (2018) 3755-3758.

[33] Yan Li, Xinhai Li, Zhixing Wang, Huajun Guo, Jiexi Wang, An Ostwald ripening route towards Ni-rich layered cathode material with cobalt-rich surface for lithium ion battery, Science China Materials, 61 (2018) 719-727.

[32] Zhao Xi, Z.hixing Wang, Xinhai Li, Huajun Guo, Guochun Yan, Jiexi Wang*, Improving the Desulfurization Degree of High-Grade Nickel Matte via a Two-Step Oxidation Roasting Process, Metallurgical and Materials Transactions B-Process Metallurgy and Materials Processing Science, 49 (2018) 1834-1840.

[31] Mingxia Dong, Zhixing Wang, Xinhai Li, Huajun Guo, Jiexi Wang*, A smart architecture of nickel-cobalt sulfide nanotubes assembled nanoclusters for high-performance pseudocapacitor, Journal of Alloys and Compounds, 765 (2018) 505-511.

[30] Guangchao Li, Jia-Fu Yin, Huajun Guo, Zhixing Wang, Yi Zhang, Xinhai Li, Jiexi Wang*, Zhoulan Yin*, Gui-Chao Kuang*, BODIPY-Based Conjugated Porous Polymer and Its Derived Porous Carbon for Lithium-Ion Storage, ACS Omega, 3 (2018) 7727-7735.

[29] Wei Pan, Wenjie Peng, Guochun Yan, Huajun Guo, Zhixing Wang, Xinhai Li, Weihua Gui, Jiexi Wang*, Ning Chen*, Suppressing the voltage decay and enhancing the electrochemical performance of Li1.2Mn0.54Co0.13Ni0.13O2 by multifunctional Nb2O5 coating, Energy Technology, 6 (2018) 2139–2145.

[28] Yan Li, Xinhai Li, Zhixing Wang, Huajun Guo, Tao Li, Kui Meng, Jiexi Wang*, A novel hierarchical precursor of densely integrated hydroxide nanoflakes on oxide microspheres toward high-performance layered Ni-rich cathode for lithium ion batteries, Materials Chemistry Frontiers, 2 (2018) 1822-1828..

[27] Zhiliang Yan, Qiyang Hu, Guochun Yan, Hangkong Li, Kaimin Shih, Zhewei Yang, Xinhai Li, Zhixing Wang, Jiexi Wang*, Co3O4/Co nanoparticles enclosed graphitic carbon as anode material for high performance Li-ion batteries, Chemical Engineering Journal, 321 (2017) 495-501.

[26] Jin Leng, Zhixing Wang, Xinhai Li, Huajun Guo, Hangkong Li, Kaimin Shih, Guochun Yan, Jiexi Wang*, Accurate construction of a hierarchical nickel–cobalt oxide multishell yolk–shell structure with large and ultrafast lithium storage capability, Journal of Materials Chemistry A, 5 (2017) 14996-15001.

[25] Kui Meng, Zhixing Wang, Huajun Guo, Xinhai Li, Jiexi Wang*, A compact process to prepare LiNi0.8Co0.1Mn0.1O2 cathode material from nickel-copper sulfide ore, Hydrometallurgy, 174 (2017) 1-9.

[24] Tao Li, Xinhai Li, Zhixing Wang, Huajun Guo, Jiexi Wang*, A new design concept for preparing nickel-foam-supported metal oxide microspheres with superior electrochemical properties, Journal of Materials Chemistry A, 5 (2017) 13469-13474.

[23] Mingxia Dong, Zhixing Wang, Hangkong Li, Huajun Guo, Xinhai Li, Kaimin Shih, Jiexi Wang*, Metallurgy Inspired Formation of Homogeneous Al2O3 Coating Layer To Improve the Electrochemical Properties of LiNi0.8Co0.1Mn0.1O2 Cathode Material, ACS Sustainable Chemistry & Engineering, 5 (2017) 10199-10205.

[22] Zhaomeng Liu, Wenjie Peng, Kaimin Shih, Jiexi Wang*, Zhixing Wang, Huajun Guo, Guochun Yan, Xinhai Li, Liubin Song, A MoS2 coating strategy to improve the comprehensive electrochemical performance of LiVPO4F, Journal of Power Sources, 315 (2016) 294-301.

[21] Jiexi Wang*, Zhaomeng Liu, Guochun Yan, Hangkong Li, Wenjie Peng, Xinhai Li, Liubin Song, Kaimin Shih, Improving the electrochemical performance of lithium vanadium fluorophosphate cathode material: Focus on interfacial stability, Journal of Power Sources, 329 (2016) 553-557.

[20] Zhaomeng Liu, Wenjie Peng, Zhenming Xu, Kaimin Shih, Jiexi Wang*, Zhixing Wang, Xiaojun Lv, Jiangan Chen, Xinhai Li, Molybdenum Disulfide-Coated Lithium Vanadium Fluorophosphate Anode: Experiments and First-Principles Calculations, ChemSusChem, 9 (2016) 2122-2128.

[19] Jiexi Wang, Qiaobao Zhang, Xinhai Li, Bao Zhang*, Liqiang Mai*, Kaili Zhang*, Smart construction of three-dimensional hierarchical tubular transition metal oxide core/shell heterostructures with high-capacity and long-cycle-life lithium storage, Nano Energy, 12 (2015) 437-446.

[18] Qiaobao Zhang, Jiexi Wang, Jichen Dong, Feng Ding, Xinhai Li, Bao Zhang*, Shihe Yang*, Kaili Zhang*, Facile general strategy toward hierarchical mesoporous transition metal oxides arrays on three-dimensional macroporous foam with superior lithium storage properties, Nano Energy, 13 (2015) 77-91.

[17] Liyuan Chai, Jiexi Wang, Haiying Wang, Liyuan Zhang*, Wanting Yu, Liqiang Mai*, Porous carbonized graphene-embedded fungus film as an interlayer for superior Li–S batteries, Nano Energy, 17 (2015) 224-232.

[16] Jiexi Wang, Xinhai Li*, Zhixing Wang, Huajun Guo, Bin Huang, Zhiguo Wang, Guochun Yan, Systematic investigation on determining chemical diffusion coefficients of lithium ion in Li1+xVPO4F (0≤x≤2), Journal of Solid State Electrochemistry, 19 (2015) 153-160.

[15] Zhaomeng Liu, Wenjie Peng*, Yulei Fan, Xinhai Li, Zhixing Wang, Huajun Guo, Jiexi Wang*, A new route for graphene wrapping LiVPO4F/C nano composite toward superior lithium storage property, Journal of Alloys and Compounds, 639 (2015) 496-503.

[14] Zhaomeng Liu, Wenjie Peng*, Yulei Fan, Xinhai Li, Zhixing Wang, Huajun Guo, Jiexi Wang*, One-step facile synthesis of graphene-decorated LiVPO4F/C nanocomposite as cathode for high-performance lithium ion battery, Ceramics International, 41 (2015) 9188-9192.

[13] Zhaomeng Liu, Yulei Fan, Wenjie Peng*, Zhixing Wang, Huajun Guo, Xinhai Li, Jiexi Wang*, Mechanical activation assisted soft chemical synthesis of Na-doped lithium vanadium fluorophosphates with improved lithium storage properties, Ceramics International, 41 (2015) 4267-4271.

[12] Yulei Fan, Zhaomeng Liu, Qiyang Hu*, Xinhai Li, Zhixing Wang, Huajun Guo, Jiexi Wang*, Synthesis and performance of xLiVPO4F–yLi3V2(PO4)3 composites as cathode materials for lithium ion batteries, Ceramics International, 41 (2015) 13891-13895.

[11] Jiexi Wang, Qiaobao Zhang, Xinhai Li*, Daguo Xu, Zhixing Wang, Huajun Guo, Kaili Zhang*, Three-dimensional hierarchical Co3O4/CuO nanowire heterostructure arrays on nickel foam for high-performance lithium ion batteries, Nano Energy, 6 (2014) 19-26.

[10] Jiexi Wang, Xinhai Li*, Zhixing Wang, Bin Huang, Zhiguo Wang, Huajun Guo, Nanosized LiVPO4F/graphene composite: a promising anode material for lithium ion batteries, Journal of Power Sources, 251 (2014) 325-330.

[9] iaobao Zhang, Jiexi Wang, Daguo Xu, Zhixing Wang*, Xinhai Li, Kaili Zhang*, Facile large-scale synthesis of vertically aligned CuO nanowires on nickel foam: growth mechanism and remarkable electrochemical performance, Journal of Materials Chemistry A, 2 (2014) 3865-3874.

[8] Jiexi Wang, Qiaobao Zhang, Xinhai Li*, Zhixing Wang, Huajun Guo, Daguo Xu, Kaili Zhang*, Sputtering graphite coating to improve the elevated-temperature cycling ability of the LiMn2O4 electrode, Physical Chemistry Chemical Physics, 16 (2014) 16021-16029.

[7] Jiexi Wang, Qiaobao Zhang, Xinhai Li*, Zhixing Wang, Kaili Zhang, Huajun Guo, Guochun Yan, Bin Huang, Zhenjiang He, A graphite functional layer covering the surface of LiMn2O4 electrode to improve its electrochemical performance, Electrochemistry Communications, 36 (2013) 6-9.

[6] Jiexi Wang, Zhixing Wang*, Xinhai Li, Huajun Guo, Xianwen Wu, Xiaoping Zhang, Wei Xiao, xLi3V2(PO4)3·LiVPO4F/C composite cathode materials for lithium ion batteries, Electrochimica Acta, 87 (2013) 224-229.

[5] Jiexi Wang, Xinhai Li*, Zhixing Wang, Huajun Guo, Yunhe Zhang, Xunhui Xiong, Zhenjiang He, Synthesis and characterization of LiVPO4F/C using precursor obtained through a soft chemical route with mechanical activation assist, Electrochimica Acta, 91 (2013) 75-81.

[4] Jiexi Wang, Xinhai Li*, Zhixing Wang, Huajun Guo, Yan Li, Zhenjiang He, Bin Huang, Enhancement of electrochemical performance of Al-doped LiVPO4F using AlF3 as aluminum source, Journal of Alloys and Compounds, 581 (2013) 836-842.

[3] Jiexi Wang, Zhixing Wang, Xinhai Li, Huajun Guo, Wei Xiao, Silin Huang, Zhenjiang He, Comparative investigations of LiVPO4F/C and Li3V2(PO4)3/C synthesized in similar soft chemical route, Journal of Solid State Electrochemistry, 17 (2013) 1-8.

[2] Jie-xi Wang, Zhi-xing Wang*, Li Shen, Xin-hai Li, Hua-jun Guo, Wei-jia Tang, Zhen-guo Zhu, Synthesis and performance of LiVPO4F/C-based cathode material for lithium ion battery, Transactions of Nonferrous Metals Society of China, 23 (2013) 1718-1722.

[1] Jie-xi Wang, Xin-hai Li, Zhi-xing Wang, Ling-jun Li, Hua-jun Guo, Peng Yue, Ling Wu, Effect of pH value on performance of Ni0.8Co0.1Mn0.1(OH)2 and LiNi0.8Co0.1Mn0.1O2 synthesized via fast co-precipitation process, The Chinese Journal of Nonferrous Metals, 21 (2011) 2175-2181.