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高层次人才

高层次人才

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张桥保

职称:教授,博士生导师
邮箱:zhangqiaobao@xmu.edu.cn

个人简历

近五年以通讯作者发表的主要学术论文:

1.  “Advances in the rational design of flexible Zn-Air batteries: Recent developments and future perspectives”, Prog. Mater. Sci., 2026, 159, 101657

2. “Stress-Adaptive Conductive Network and Ion-Segregated Polymeric-Inorganic Interphases Enable Durable Room-Temperature Silicon-Based Solid-State Batteries”, Nat. Commun., 2026, In press.

3. “Single-Atom Engineering for Synergistic Nucleation and Interfacial Regulation Enabling Durable Anode-Free Sodium Metal Batteries”, Adv. Mater., 2026, 38, e13154

4. “Synergistic structural and defect engineering in MoS2 featuring ultra-expanded interlayers for fast-chargeable and long-durable sodium-ion batteries”, Adv. Mater., 2026, 38, e17606

5. “Flash Joule Heating-Induced Spinel-Phase Surface in Ni-Rich Layered Oxide Positive Electrodes to Stabilise Lattice Oxygen”, Nat. Commun., 2026, 17, 4008.

6. “Fundamental understanding of reaction mechanism and modulation strategy in carbon-based bifunctional oxygen electrocatalysts towards high-performance zinc-air batteries”, Mater. Sci. Eng. R., 2026, 171, 101272.

7. “Multi-Level Design and Irreversible Ion Exchange Involved Sodium-Storage Mechanism of Zero-Strain K2Ti6O13 Toward Sodium-Ion Capacitors”, Adv. Energy Mater., 2026, e70969

8. “Multiscale Kinetics-Enhanced and Interphase-Stabilized Hierarchical Architecture Design Enables Fast-Charging and Longevous Sodium-Ion Batteries”, Adv. Energy Mater., 2026, e71059

9. “Nonequilibrium Restoration of Air-Degraded Layered Oxide Cathodes via Transient Thermal Processing for Sodium-Ion Batteries”, ACS Energy Lett., 2026, https://doi.org/10.1021/acsenergylett.6c01871.

10. “Competitive Occupation-Induced Grain Boundary Enrichment Enables Crack-Free Layered Cathode Materials for Sodium-Ion Batteries”, ACS Energy Lett., 2026, https://doi.org/10.1021/acsenergylett.6c01088

11. “Comprehensive crystallographic engineering for high-efficiency and durable zinc metal anodes”, Prog. Mater. Sci., 2025, 152, 101453

12. “Biomimetic Sandwich-Structured Tubular Ion Pump Arrays for Lithium Metal Batteries”, J. Am. Chem. Soc., 2025, 147, 25883−25895.

13. “Mechanically robust bismuth embedded carbon microspheres for ultra-fast charging and ultra-stable sodium ion batteries”, J. Am. Chem. Soc., 2025, 147, 3047−3061

14. “Converting layered LiCoO2 into disordered rocksalt coating material to enhance interfacial stability of high-voltage cathode”, Angew. Chem. Int. Ed., 2025, 64, e202512300

15. “High-Performance Silicon Anodes Enabled by Multifunctional Ultrafine Silica Nanoparticle-Embedded Carbon Coatings for Lithium-Ion Batteries”, Adv. Energy Mater., 2025, 15, 2500189

16. “Sandwich-Structured Lithiophilic Layer with Mixed Ionic−Electronic Conductivity for Lithium Metal Batteries”, ACS Energy Lett., 2025, 10, 5972−5981

17. “Regulating Interfacial Chemistry to Boost Ionic Transport and Interface Stability of Composite Solid-State Electrolytes for High-Performance Solid-State Lithium Metal Batteries”, Adv. Funct. Mater., 2025, 35, 2422147

18. “Biomimetics-Driven Design of Micron-Sized SiO Composites for High-Performance Lithium-Ion Batteries”, Adv. Funct. Mater., 2025, 35, 2422743

19. “Unlocking the multidimensional application and optimization mechanism of MOFs materials in aqueous zinc ion batteries”, J. Energy. Chem, 2025, 111, 249-273

20. “Single-Crystallization of O3-Type Layered Oxide Cathode for Na-Ion Battery,” Chem. Mater., 2025, 37, 5874–5883

21. “Wide-temperature solid polymer electrolytes: Li+ coordination structure, ionic transport and interphases,” Mater. Horiz., 2025, 12, 3201-3233

22. “Facile and scalable synthesis of bismuth oxyhalide nanosheets anodes for fast and durable sodium-ion storage”, Sci. China Mater., 2025, 68, 868 – 878

23.  “Effective binding sufficiently-small SiO2 nanoparticles within carbon nanosheets framework enables a high-performing and durable anode for lithium-ion batteries”, Journal of Materiomics, 2025, 11, 101053

24. “High-entropy Doping Promising Ultrahigh-Ni Co-Free Single-crystalline Cathode toward Commercializable High-energy Lithium-ion Batteries”, Sci. Adv., 2024, 10, eado4472.

25. “Self-assembled hydrated copper coordination compounds as ionic conductors for room temperature solid-state batteries” , Nat. Commun., 2024, 15, 1056

26. “The Origin, Characterization, and Precise Design and Regulation of Diverse Hard Carbon Structures for Targeted Applications in Lithium/Sodium/Potassium Ion Batteries”, Electrochem. Energy Rev., 2024, 7, 34.

27. “Mechanistic Understanding of the Underlying Energy Storage Mechanism of α-MnO2-based Pseudo-Supercapacitors”, Adv. Mater., 2024, 36, 2408476

28. “Simultaneous Catalytic Acceleration of White Phosphorus Polymerization and Red Phosphorus Potassiation for High ‐Performance Potassium-Ion Batteries”, Adv. Mater., 2024, 36, 2306512

29. “Achieving High-Capacity Cathode Presodiation Agent via Triggering Anionic Oxidation Activity in Sodium Oxide”, Adv. Mater., 2024, 36, 2407720

30. “Engineering Covalent Organic Frameworks toward Advanced Zinc–based Batteries”, Adv. Mater., 2024, 36, 2313152

31.  “Tailoring Desolvation Strategies for Aqueous Zinc-Ion Batteries”, Energy Environ. Sci., 2024, 17, 4819-4846.

32. “Hard carbon with an opened pore structure for enhanced sodium storage performance”, Energy Environ. Sci., 2024,17, 8189-8197.

33.  “Resolving the Origins of Superior Cycling Performance of Antimony Anode in Sodium-ion Batteries: A Comparison with Lithium-ion Batteries”, Angew. Chem. Int. Ed., 2024, 63, e202320183

34. “Electrostatic Shielding Engineering for Stable Zn Metal Anodes”, Adv. Energy. Mater., 2024, 15, 2403958

35. “Long-Durable Potassium Ion Batteries Enabled by Medium-Entropy Lattice Engineering on Prussian Blue Analogues Cathodes”, Adv. Energy. Mater., 2024, 15, 2405007

36. “Electrochemical processes and reactions in rechargeable battery materials revealed via in situ transmission electron microscopy”, Adv. Energy. Mater., 2024, 14, 2303165

37. “Enhanced Fast-Charging and Longevity in Sodium-Ion Batteries through Nitrogen-Doped Carbon Frameworks Encasing Flower-Like Bismuth Microspheres”, Adv. Energy. Mater., 2024, 14, 2400132

38. “Three birds with one stone: multifunctional separators based on SnSe nanosheets enable high-performance Li-, Na- and K-sulfur batteries”, Adv. Energy. Mater., 2024, 14, 2303551

39. “Multiscale Micro-Nano Hierarchical Porous Germanium with Self-Adaptive Stress Dispersion for Highly Robust Lithium-Ion Batteries Anode”, Adv. Energy. Mater., 2024, 14, 2303876

40. “Machine Learning-Assisted Property Prediction of Solid-State Electrolyte”, Adv. Energy. Mater., 2024, 14, 2304480

41. “Fluorine doping modulating pore structure and adsorption capability of carbon matrix boosting potassium storage performance of red phosphorus anode”, Adv. Funct. Mater., 2024, 34, 2409090

42. “Unlocking the Origins of Highly Reversible Lithium Storage and Stable Cycling in a Spinel High-Entropy Oxide Anode for Lithium-Ion Batteries”, Adv. Funct. Mater., 2024, 34, 2307923

43. “Three birds with one arrow: Multifunctional single-atom catalysts enableefficient lithium-sulfur batteries”, Energy Storage Mater., 2024, 66, 103240

44.  “Manipulating charge-transfer kinetics and flow-domain LiF-rich interphase to enable high-performance microsized silicon-silver-carbon composite anode for solid-statebatteries”, Energy Environ. Sci., 2023,16, 5395-5408

45. “Enabling highly-efficient and stable potassium-ion storage by exposing atomic-dispersed super-coordinated antimony O2Sb1N4 sites on N-doped carbon nanosheets”, Energy Environ. Sci., 2023,16, 2153-2166

46. “Deciphering Structural Origins of Highly Reversible Lithium Storage in High Entropy Oxides with In Situ Transmission Electron Microscopy”, Adv. Mater., 2023, 35, 2205751

47. “Surface and lattice engineered ruthenium superstructures towards high-performance bifunctional hydrogen catalysis,” Energy Environ. Sci., 2023, 16, 157–166

48. “Fast and Long-Lasting Potassium-Ion Storage Enabled by Rationally Engineering Strain-Relaxation Bi/Bi 2O3 Nanodots Embedded in Carbon Sheets”, Adv. Funct. Mater., 2023, 33, 2307205

49. “In Situ Atomic-Scale Deciphering of Multiple Dynamic Phase Transformations and Reversible Sodium Storage in Ternary Metal Sulfide Anode”, ACS Nano, 2023, 17, 12483–12498

50. “A General Route for Encapsulating Monodispersed Transition Metal Phosphides into Carbon Multi-Chambers toward High-Efficient Lithium-Ion Storage with Underlying Mechanism Exploration,”Adv. Funct. Mater., 2023, 33, 2212100

51. “Challenges and opportunities towards silicon-based all-solid-state batteries”, Energy Storage Mater., 2023, 61, 102875

52. “Efficient implementation of kilogram-scale, high-capacity and long-life Si-C/TiO2 anodes,” Energy Storage Mater., 2023, 56, 319–330

53.  “Machine Learning ‑ Assisted Low ‑ Dimensional Electrocatalysts Design for Hydrogen Evolution Reaction”, Nano-Micro Lett., 2023, 15, 227

54. “In situ atomic-scale observation of size-dependent (de)potassiation and reversible phase transformation in tetragonal FeSe anodes”, InfoMat., 2023, 5, e12364.

55. “Ultra-thick, dense dual-encapsulated Sb anode architecture with conductively elastic networks promises potassium-ion batteries with high areal and volumetric capacities”, eScience, 2023, 3, 100177

56. “Deciphering the potassium storage phase conversion mechanism of phosphorus by combined solid-state NMR spectroscopy and density functional theory calculations,” J. Energy Chem., 2023, 79, 45–53

57. “Advances in the structure design of substrate materials for zinc anode of aqueous zinc ion batteries”, Green Energy & Environment,2023, 8, 1531-1552

58. “Building better solid-state batteries with silicon-based anodes”, Interdisciplinary Materials, 2023, 2, 635-663

59. “Phase Engineering of a Ruthenium Nanostructure toward High-Performance Bifunctional Hydrogen Catalysis,” ACS Nano, 2022, 16, 14885–14894

60. “Unraveling Atomic-Scale Origins of Selective Ionic Transport Pathways and Sodium-Ion Storage Mechanism in Bi2S3 Anodes”, Small Methods, 2022, 6, 2200995

61. “In Situ Transmission Electron Microscopy for Understanding Materials and Interfaces Challenges in All-Solid-State Lithium Batteries,” eTransportation, 2022, 14, 100203

62. “Unveiling the Dynamic Oxidative Etching Mechanisms of Nanostructured Metals/Metallic Oxides in Liquid Media Through In Situ Transmission Electron Microscopy”, Adv. Funct. Mater., 2022, 32, 202204976

63. “Synergistic Engineering of Heterointerface and Architecture in New-Type ZnS/Sn Heterostructures In Situ Encapsulated in Nitrogen-Doped Carbon Toward High-Efficient Lithium Ion Storage”, Adv. Funct. Mater., 2022, 32, 2205635

64. “Enabling robust structural and interfacial stability of micron-Si anode toward high-performance liquid and solid-state lithium-ion batteries”, Energy Storage Mater., 2022, 52, 547–561

65. “Electrolyte additive engineering for aqueous Zn ion batteries”, Energy Storage Mater., 2022, 51, 733-755

66. “A Review on 3D Zinc Anodes for Zinc Ion Batteries”, Small Methods, 2022, 2200597

67. “Boosting the potassium-ion storage performance enabled by engineering of hierarchical MoSSe nanosheets modified with carbon on porous carbon sphere”, Science Bulletin, 2022, 67, 933-945

68. “Polymer-/ceramic-based dielectric composites for energy storage and conversion”, Energy & Environmental Mater., 2022, 5, 486–514

69. “Understanding the growth mechanisms of metal-based core–shell nanostructures revealed by in situ liquid cell transmission electron microscopy”, J. Energy Chem., 2022, 71, 370-383

70. “B-doped and La4NiLiO8-coated Ni-rich cathode with enhanced structural and interfacial stability for lithium-ion batteries”, J. Energy Chem., 2022, 71, 588-594

71. “Atomic mechanisms of hexagonal close-packed Ni nanocrystallization revealed by in situ liquid cell transmission electron microscopy”, Nano Research, 2022, 15, 6772–6778

72. “Shining light on transition metal tungstate-based nanomaterials for electrochemical applications: Structures, progress, and perspectives”, Nano Research, 2022, 15, 6924–6960

73. “Scalable Synthesis of Pore-Rich Si/C@C Core−Shell-Structured Microspheres for Practical Long-Life Lithium-Ion Battery Anodes”, ACS Appl. Mater. Interfaces, 2022,14, 10308–10318

74. “Lithiophilic N-doped carbon bowls induced Li deposition in layered graphene film for advanced lithium metal batteries”, Nano Research, 2022, 15, 352–360

75. “Research Progresses on Structural Optimization and Interfacial Modification of Silicon Monoxide Anode for Lithium-Ion Battery”, Acta Phys. -Chim. Sin., 2022, 38, 2103052.

76. “Harnessing the Volume Expansion of MoS3 Anode by Structure Engineering to Achieve High Performance Beyond Lithium-Based Rechargeable Batteries”, Adv. Mater., 2021,33, 2106232

77. “An Efficient Strategy toward Multichambered Carbon Nanoboxes with Multiple Spatial Confinement for Advanced Sodium–Sulfur Batteries,” ACS Nano, 2021, 15, 20607–20618

78. “Understanding all solid-state lithium batteries through in situ transmission electron microscopy”, Mater. Today, 2021, 42, 137-161

79. “Fast and Durable Potassium Storage Enabled by Constructing Stress-Dispersed Co3Se4 Nanocrystallites Anchored on Graphene Sheets”, ACS Nano, 2021, 15, 10107–10118

80. “Design principles and direct applications of cobalt-based metal organic frameworks for electrochemical energy storage”, Coord. Chem. Rev., 2021, 438, 213872.

81. “Designing and Understanding the Superior Potassium Storage Performance of Nitrogen/Phosphorus Co-Doped Hollow Porous Bowl-Like Carbon Anodes”, Adv. Funct. Mater., 2021, 31, 2007158

82. “Stable Hollow-Structured Silicon Suboxide-Based Anodes toward High-Performance Lithium-Ion Batteries”, Adv. Funct. Mater., 2021, 31, 2101796

83. “A Self-Healing Volume Variation Three-Dimensional Continuous Bulk Porous Bismuth for Ultrafast Sodium Storage”, Adv. Funct. Mater., 2021, 31, 2011264

84. “Confining invasion directions of Li+ to achieve efficient Si anode material for lithium-ion batteries”, Energy Storage Mater., 2021, 42, 231-239

85. “N-doped porous carbon nanofibers sheathed pumpkin-like Si/C composites as free-standing anodes for lithium-ion batteries”, J Energy Chem, 2021, 54, 727-735

86. “LiPO2F2 electrolyte additive for high-performance Li-rich cathode material”, J Energy Chem, 2021, 60, 564-571

87. “Rational design of three-dimensional branched NiCo-P@CoNiMo-P core/shell nanowire heterostructures for high-performance hybrid supercapacitor”, J Energy Chem, 2021, 61, 489-496

88. “Leaf-inspired design of mesoporous Sb2S3/N-doped Ti3C2Tx composite towards fast sodium storage”, Sci. China Chem., 2021, 64, 964–973

89. “Boosting lithium storage performance of Si nanoparticles via thin carbon and nitrogen/phosphorus co-doped two-dimensional carbon sheet dual encapsulation”, Rare Metals, 2021, 40, 1347–1356.

90.  “Application of in-situ characterization techniques in all-solid-state lithium batteries”, Acta Phys. Sin., 2021, 70, 198102

91. “Influencing Factors and Promotion Strategies of the First-cycle Coulombic Efficiency of Silicon Suboxide Anodes in Lithium-ion Batteries”, Chem. J. Chinese Universities, 2021, 42, 2342-2358.

92. “Research Progress of Anode Materials for Zinc-Based Aqueous Battery in a Neutral or Weak Acid System”, Progress in Chemistry, 2021, 11, 1983-2001

93. “Research progress in understanding of lithium storage behavior and reaction mechanism of electrode materials through in situ transmission electron microscopy”, Energy Storage Science and Technology, 2021, 10,1219-1236

中文文章:

1. 张佳明,施博扬,林炜琦,夏佳浩,何 桐,怡 勇,李 永*,张桥保*,“超高能量密度锂金属电池电解液研究进展”,储能科学与技术,2026, doi:10.19799/j.cnki.2095-4239.2025.0975.

2. 张桥保, 龚正良*, 杨勇*,“硫化物固态电解质材料界面及其表征的研究进展”,物理学报,2020, 69(22): 228803. doi: 10.7498/aps.69.20201581 (入选物理学报2022年度最有影响论文)

3.陆敬予, 柯承志, 龚正良, 李德平*, 慈立杰*, 张力, 张桥保*,“原位表征技术在全固态锂电池中的应用”,物理学报,2021, 70(19): 198102, doi: 10.7498/aps.70.20210531 (入选物理学报2023年度高被引论文)

4.柯承志, 肖本胜, 李苗, 陆敬予, 何洋, 张力, 张桥保*, “电极材料储锂行为及其机制的原位透射电镜研究进展”, 储能科学与技术, 2021, 10(4): 1219-1236.

5.朱思颖, 李辉阳, 胡忠利, 张桥保*, 赵金保, 张力* “锂离子电池氧化亚硅负极结构优化和界面改性研究进展”,物理化学学报, 2022, 38(6): 2103052.

6.李辉阳, 朱思颖, 李莎, 张桥保*, 赵金保, 张力*,“锂离子电池硅氧化物负极首次库伦效率的影响因素与提升策略”,高等学校化学学报, 2021, 42(8): 2342.

7.王华燕, 陈慧鑫*, 张桥保*, 张力,“生物质碳材料作为钠/钾离子电池负极材料的研究进展”,中国材料进展, 2021, 40(08):596-606. doi:10.7502/j.issn.1674-3962.202106013

书籍:

1. 张桥保,吴贤文,陆敬予,伊廷锋;“电池材料——合成,表征与应用”,北京:化学工业出版社,2022,https://cip.com.cn/Book/Index/49252。获中国石油和化学工业优秀出版物奖•图书奖二等奖。

2. 张桥保,柯小行,唐永福;“能源材料的原位透射电子显微分析”,北京:化学工业出版社,2026,待出版。

3. 张桥保;“固态电池基础科学和产业实践”,北京:化学工业出版社,2026,待出版。

研究领域

(1) 二次(锂/钠/钾/锌)离子电池

(2)固态电池

(3)原位透射电镜与谱学表征

主要科研成果

长期从事高比能二次电池关键电极材料的设计和性能优化,固态电池及其储能过程中的构效关系解析的基础科学和应用研究。共发表SCI学术论文230余篇,引用23000余次, H 因子92。以第一或通讯作者 (含共同) 在Sci. Adv., Nat. Commun., J. Am. Chem. Soc., Adv. Mater., Energy Environ. Sci., Angew Chem Int Ed., Chem. Soc. Rev., Prog. Mater. Sci., Electrochem. Energy Rev.,等重要学术期刊上发表论文200余篇。主编书籍【电池材料—合成、表征与应用 (化学工业出版社)】, 获中国石油和化学工业优秀出版物奖•图书奖二等奖。主持国家自然科学基金委联合基金重点项目、优秀青年基金项目、重大研究计划-培育项目、面上和青年基金项目及国家重点研发计划课题等国家和省部级项目多项。受邀在国际前沿材料大会、全国电化学大会 、中国材料大会、中国化学会(国际)能源材料化学研讨会等会议上做邀请报告130余次。现担任中国材料研究学会青年工作委员会理事、中国电池工业协会新材料分会理事和中国硅酸盐学会固态离子学分会青年理事等; Nat. Sci. Rev. (NSR) 学科编辑工作组成员,Chin.Chem.Lett.副主编, Rare Metals 学术副主编,Interdisciplinary Materials 学术编辑;J. Energy Chem、Rare Metals、储能科学与技术杂志编委;eScience、Sci. China Chem., InfoMat、Mater. Horiz., Nano Research、物理化学学报等杂志青年编委及客座编辑。

主要代表学术论著与论文

近五年以通讯作者发表的主要学术论文:

1.  “Advances in the rational design of flexible Zn-Air batteries: Recent developments and future perspectives”, Prog. Mater. Sci., 2026, 159, 101657

2. “Stress-Adaptive Conductive Network and Ion-Segregated Polymeric-Inorganic Interphases Enable Durable Room-Temperature Silicon-Based Solid-State Batteries”, Nat. Commun., 2026, In press.

3. “Single-Atom Engineering for Synergistic Nucleation and Interfacial Regulation Enabling Durable Anode-Free Sodium Metal Batteries”, Adv. Mater., 2026, 38, e13154

4. “Synergistic structural and defect engineering in MoS2 featuring ultra-expanded interlayers for fast-chargeable and long-durable sodium-ion batteries”, Adv. Mater., 2026, 38, e17606

5. “Flash Joule Heating-Induced Spinel-Phase Surface in Ni-Rich Layered Oxide Positive Electrodes to Stabilise Lattice Oxygen”, Nat. Commun., 2026, 17, 4008.

6. “Fundamental understanding of reaction mechanism and modulation strategy in carbon-based bifunctional oxygen electrocatalysts towards high-performance zinc-air batteries”, Mater. Sci. Eng. R., 2026, 171, 101272.

7. “Multi-Level Design and Irreversible Ion Exchange Involved Sodium-Storage Mechanism of Zero-Strain K2Ti6O13 Toward Sodium-Ion Capacitors”, Adv. Energy Mater., 2026, e70969

8. “Multiscale Kinetics-Enhanced and Interphase-Stabilized Hierarchical Architecture Design Enables Fast-Charging and Longevous Sodium-Ion Batteries”, Adv. Energy Mater., 2026, e71059

9. “Nonequilibrium Restoration of Air-Degraded Layered Oxide Cathodes via Transient Thermal Processing for Sodium-Ion Batteries”, ACS Energy Lett., 2026, https://doi.org/10.1021/acsenergylett.6c01871.

10. “Competitive Occupation-Induced Grain Boundary Enrichment Enables Crack-Free Layered Cathode Materials for Sodium-Ion Batteries”, ACS Energy Lett., 2026, https://doi.org/10.1021/acsenergylett.6c01088

11. “Comprehensive crystallographic engineering for high-efficiency and durable zinc metal anodes”, Prog. Mater. Sci., 2025, 152, 101453

12. “Biomimetic Sandwich-Structured Tubular Ion Pump Arrays for Lithium Metal Batteries”, J. Am. Chem. Soc., 2025, 147, 25883−25895.

13. “Mechanically robust bismuth embedded carbon microspheres for ultra-fast charging and ultra-stable sodium ion batteries”, J. Am. Chem. Soc., 2025, 147, 3047−3061

14. “Converting layered LiCoO2 into disordered rocksalt coating material to enhance interfacial stability of high-voltage cathode”, Angew. Chem. Int. Ed., 2025, 64, e202512300

15. “High-Performance Silicon Anodes Enabled by Multifunctional Ultrafine Silica Nanoparticle-Embedded Carbon Coatings for Lithium-Ion Batteries”, Adv. Energy Mater., 2025, 15, 2500189

16. “Sandwich-Structured Lithiophilic Layer with Mixed Ionic−Electronic Conductivity for Lithium Metal Batteries”, ACS Energy Lett., 2025, 10, 5972−5981

17. “Regulating Interfacial Chemistry to Boost Ionic Transport and Interface Stability of Composite Solid-State Electrolytes for High-Performance Solid-State Lithium Metal Batteries”, Adv. Funct. Mater., 2025, 35, 2422147

18. “Biomimetics-Driven Design of Micron-Sized SiO Composites for High-Performance Lithium-Ion Batteries”, Adv. Funct. Mater., 2025, 35, 2422743

19. “Unlocking the multidimensional application and optimization mechanism of MOFs materials in aqueous zinc ion batteries”, J. Energy. Chem, 2025, 111, 249-273

20. “Single-Crystallization of O3-Type Layered Oxide Cathode for Na-Ion Battery,” Chem. Mater., 2025, 37, 5874–5883

21. “Wide-temperature solid polymer electrolytes: Li+ coordination structure, ionic transport and interphases,” Mater. Horiz., 2025, 12, 3201-3233

22. “Facile and scalable synthesis of bismuth oxyhalide nanosheets anodes for fast and durable sodium-ion storage”, Sci. China Mater., 2025, 68, 868 – 878

23.  “Effective binding sufficiently-small SiO2 nanoparticles within carbon nanosheets framework enables a high-performing and durable anode for lithium-ion batteries”, Journal of Materiomics, 2025, 11, 101053

24. “High-entropy Doping Promising Ultrahigh-Ni Co-Free Single-crystalline Cathode toward Commercializable High-energy Lithium-ion Batteries”, Sci. Adv., 2024, 10, eado4472.

25. “Self-assembled hydrated copper coordination compounds as ionic conductors for room temperature solid-state batteries” , Nat. Commun., 2024, 15, 1056

26. “The Origin, Characterization, and Precise Design and Regulation of Diverse Hard Carbon Structures for Targeted Applications in Lithium/Sodium/Potassium Ion Batteries”, Electrochem. Energy Rev., 2024, 7, 34.

27. “Mechanistic Understanding of the Underlying Energy Storage Mechanism of α-MnO2-based Pseudo-Supercapacitors”, Adv. Mater., 2024, 36, 2408476

28. “Simultaneous Catalytic Acceleration of White Phosphorus Polymerization and Red Phosphorus Potassiation for High ‐Performance Potassium-Ion Batteries”, Adv. Mater., 2024, 36, 2306512

29. “Achieving High-Capacity Cathode Presodiation Agent via Triggering Anionic Oxidation Activity in Sodium Oxide”, Adv. Mater., 2024, 36, 2407720

30. “Engineering Covalent Organic Frameworks toward Advanced Zinc–based Batteries”, Adv. Mater., 2024, 36, 2313152

31.  “Tailoring Desolvation Strategies for Aqueous Zinc-Ion Batteries”, Energy Environ. Sci., 2024, 17, 4819-4846.

32. “Hard carbon with an opened pore structure for enhanced sodium storage performance”, Energy Environ. Sci., 2024,17, 8189-8197.

33.  “Resolving the Origins of Superior Cycling Performance of Antimony Anode in Sodium-ion Batteries: A Comparison with Lithium-ion Batteries”, Angew. Chem. Int. Ed., 2024, 63, e202320183

34. “Electrostatic Shielding Engineering for Stable Zn Metal Anodes”, Adv. Energy. Mater., 2024, 15, 2403958

35. “Long-Durable Potassium Ion Batteries Enabled by Medium-Entropy Lattice Engineering on Prussian Blue Analogues Cathodes”, Adv. Energy. Mater., 2024, 15, 2405007

36. “Electrochemical processes and reactions in rechargeable battery materials revealed via in situ transmission electron microscopy”, Adv. Energy. Mater., 2024, 14, 2303165

37. “Enhanced Fast-Charging and Longevity in Sodium-Ion Batteries through Nitrogen-Doped Carbon Frameworks Encasing Flower-Like Bismuth Microspheres”, Adv. Energy. Mater., 2024, 14, 2400132

38. “Three birds with one stone: multifunctional separators based on SnSe nanosheets enable high-performance Li-, Na- and K-sulfur batteries”, Adv. Energy. Mater., 2024, 14, 2303551

39. “Multiscale Micro-Nano Hierarchical Porous Germanium with Self-Adaptive Stress Dispersion for Highly Robust Lithium-Ion Batteries Anode”, Adv. Energy. Mater., 2024, 14, 2303876

40. “Machine Learning-Assisted Property Prediction of Solid-State Electrolyte”, Adv. Energy. Mater., 2024, 14, 2304480

41. “Fluorine doping modulating pore structure and adsorption capability of carbon matrix boosting potassium storage performance of red phosphorus anode”, Adv. Funct. Mater., 2024, 34, 2409090

42. “Unlocking the Origins of Highly Reversible Lithium Storage and Stable Cycling in a Spinel High-Entropy Oxide Anode for Lithium-Ion Batteries”, Adv. Funct. Mater., 2024, 34, 2307923

43. “Three birds with one arrow: Multifunctional single-atom catalysts enableefficient lithium-sulfur batteries”, Energy Storage Mater., 2024, 66, 103240

44.  “Manipulating charge-transfer kinetics and flow-domain LiF-rich interphase to enable high-performance microsized silicon-silver-carbon composite anode for solid-statebatteries”, Energy Environ. Sci., 2023,16, 5395-5408

45. “Enabling highly-efficient and stable potassium-ion storage by exposing atomic-dispersed super-coordinated antimony O2Sb1N4 sites on N-doped carbon nanosheets”, Energy Environ. Sci., 2023,16, 2153-2166

46. “Deciphering Structural Origins of Highly Reversible Lithium Storage in High Entropy Oxides with In Situ Transmission Electron Microscopy”, Adv. Mater., 2023, 35, 2205751

47. “Surface and lattice engineered ruthenium superstructures towards high-performance bifunctional hydrogen catalysis,” Energy Environ. Sci., 2023, 16, 157–166

48. “Fast and Long-Lasting Potassium-Ion Storage Enabled by Rationally Engineering Strain-Relaxation Bi/Bi 2O3 Nanodots Embedded in Carbon Sheets”, Adv. Funct. Mater., 2023, 33, 2307205

49. “In Situ Atomic-Scale Deciphering of Multiple Dynamic Phase Transformations and Reversible Sodium Storage in Ternary Metal Sulfide Anode”, ACS Nano, 2023, 17, 12483–12498

50. “A General Route for Encapsulating Monodispersed Transition Metal Phosphides into Carbon Multi-Chambers toward High-Efficient Lithium-Ion Storage with Underlying Mechanism Exploration,”Adv. Funct. Mater., 2023, 33, 2212100

51. “Challenges and opportunities towards silicon-based all-solid-state batteries”, Energy Storage Mater., 2023, 61, 102875

52. “Efficient implementation of kilogram-scale, high-capacity and long-life Si-C/TiO2 anodes,” Energy Storage Mater., 2023, 56, 319–330

53.  “Machine Learning ‑ Assisted Low ‑ Dimensional Electrocatalysts Design for Hydrogen Evolution Reaction”, Nano-Micro Lett., 2023, 15, 227

54. “In situ atomic-scale observation of size-dependent (de)potassiation and reversible phase transformation in tetragonal FeSe anodes”, InfoMat., 2023, 5, e12364.

55. “Ultra-thick, dense dual-encapsulated Sb anode architecture with conductively elastic networks promises potassium-ion batteries with high areal and volumetric capacities”, eScience, 2023, 3, 100177

56. “Deciphering the potassium storage phase conversion mechanism of phosphorus by combined solid-state NMR spectroscopy and density functional theory calculations,” J. Energy Chem., 2023, 79, 45–53

57. “Advances in the structure design of substrate materials for zinc anode of aqueous zinc ion batteries”, Green Energy & Environment,2023, 8, 1531-1552

58. “Building better solid-state batteries with silicon-based anodes”, Interdisciplinary Materials, 2023, 2, 635-663

59. “Phase Engineering of a Ruthenium Nanostructure toward High-Performance Bifunctional Hydrogen Catalysis,” ACS Nano, 2022, 16, 14885–14894

60. “Unraveling Atomic-Scale Origins of Selective Ionic Transport Pathways and Sodium-Ion Storage Mechanism in Bi2S3 Anodes”, Small Methods, 2022, 6, 2200995

61. “In Situ Transmission Electron Microscopy for Understanding Materials and Interfaces Challenges in All-Solid-State Lithium Batteries,” eTransportation, 2022, 14, 100203

62. “Unveiling the Dynamic Oxidative Etching Mechanisms of Nanostructured Metals/Metallic Oxides in Liquid Media Through In Situ Transmission Electron Microscopy”, Adv. Funct. Mater., 2022, 32, 202204976

63. “Synergistic Engineering of Heterointerface and Architecture in New-Type ZnS/Sn Heterostructures In Situ Encapsulated in Nitrogen-Doped Carbon Toward High-Efficient Lithium Ion Storage”, Adv. Funct. Mater., 2022, 32, 2205635

64. “Enabling robust structural and interfacial stability of micron-Si anode toward high-performance liquid and solid-state lithium-ion batteries”, Energy Storage Mater., 2022, 52, 547–561

65. “Electrolyte additive engineering for aqueous Zn ion batteries”, Energy Storage Mater., 2022, 51, 733-755

66. “A Review on 3D Zinc Anodes for Zinc Ion Batteries”, Small Methods, 2022, 2200597

67. “Boosting the potassium-ion storage performance enabled by engineering of hierarchical MoSSe nanosheets modified with carbon on porous carbon sphere”, Science Bulletin, 2022, 67, 933-945

68. “Polymer-/ceramic-based dielectric composites for energy storage and conversion”, Energy & Environmental Mater., 2022, 5, 486–514

69. “Understanding the growth mechanisms of metal-based core–shell nanostructures revealed by in situ liquid cell transmission electron microscopy”, J. Energy Chem., 2022, 71, 370-383

70. “B-doped and La4NiLiO8-coated Ni-rich cathode with enhanced structural and interfacial stability for lithium-ion batteries”, J. Energy Chem., 2022, 71, 588-594

71. “Atomic mechanisms of hexagonal close-packed Ni nanocrystallization revealed by in situ liquid cell transmission electron microscopy”, Nano Research, 2022, 15, 6772–6778

72. “Shining light on transition metal tungstate-based nanomaterials for electrochemical applications: Structures, progress, and perspectives”, Nano Research, 2022, 15, 6924–6960

73. “Scalable Synthesis of Pore-Rich Si/C@C Core−Shell-Structured Microspheres for Practical Long-Life Lithium-Ion Battery Anodes”, ACS Appl. Mater. Interfaces, 2022,14, 10308–10318

74. “Lithiophilic N-doped carbon bowls induced Li deposition in layered graphene film for advanced lithium metal batteries”, Nano Research, 2022, 15, 352–360

75. “Research Progresses on Structural Optimization and Interfacial Modification of Silicon Monoxide Anode for Lithium-Ion Battery”, Acta Phys. -Chim. Sin., 2022, 38, 2103052.

76. “Harnessing the Volume Expansion of MoS3 Anode by Structure Engineering to Achieve High Performance Beyond Lithium-Based Rechargeable Batteries”, Adv. Mater., 2021,33, 2106232

77. “An Efficient Strategy toward Multichambered Carbon Nanoboxes with Multiple Spatial Confinement for Advanced Sodium–Sulfur Batteries,” ACS Nano, 2021, 15, 20607–20618

78. “Understanding all solid-state lithium batteries through in situ transmission electron microscopy”, Mater. Today, 2021, 42, 137-161

79. “Fast and Durable Potassium Storage Enabled by Constructing Stress-Dispersed Co3Se4 Nanocrystallites Anchored on Graphene Sheets”, ACS Nano, 2021, 15, 10107–10118

80. “Design principles and direct applications of cobalt-based metal organic frameworks for electrochemical energy storage”, Coord. Chem. Rev., 2021, 438, 213872.

81. “Designing and Understanding the Superior Potassium Storage Performance of Nitrogen/Phosphorus Co-Doped Hollow Porous Bowl-Like Carbon Anodes”, Adv. Funct. Mater., 2021, 31, 2007158

82. “Stable Hollow-Structured Silicon Suboxide-Based Anodes toward High-Performance Lithium-Ion Batteries”, Adv. Funct. Mater., 2021, 31, 2101796

83. “A Self-Healing Volume Variation Three-Dimensional Continuous Bulk Porous Bismuth for Ultrafast Sodium Storage”, Adv. Funct. Mater., 2021, 31, 2011264

84. “Confining invasion directions of Li+ to achieve efficient Si anode material for lithium-ion batteries”, Energy Storage Mater., 2021, 42, 231-239

85. “N-doped porous carbon nanofibers sheathed pumpkin-like Si/C composites as free-standing anodes for lithium-ion batteries”, J Energy Chem, 2021, 54, 727-735

86. “LiPO2F2 electrolyte additive for high-performance Li-rich cathode material”, J Energy Chem, 2021, 60, 564-571

87. “Rational design of three-dimensional branched NiCo-P@CoNiMo-P core/shell nanowire heterostructures for high-performance hybrid supercapacitor”, J Energy Chem, 2021, 61, 489-496

88. “Leaf-inspired design of mesoporous Sb2S3/N-doped Ti3C2Tx composite towards fast sodium storage”, Sci. China Chem., 2021, 64, 964–973

89. “Boosting lithium storage performance of Si nanoparticles via thin carbon and nitrogen/phosphorus co-doped two-dimensional carbon sheet dual encapsulation”, Rare Metals, 2021, 40, 1347–1356.

90.  “Application of in-situ characterization techniques in all-solid-state lithium batteries”, Acta Phys. Sin., 2021, 70, 198102

91. “Influencing Factors and Promotion Strategies of the First-cycle Coulombic Efficiency of Silicon Suboxide Anodes in Lithium-ion Batteries”, Chem. J. Chinese Universities, 2021, 42, 2342-2358.

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中文文章:

1. 张佳明,施博扬,林炜琦,夏佳浩,何 桐,怡 勇,李 永*,张桥保*,“超高能量密度锂金属电池电解液研究进展”,储能科学与技术,2026, doi:10.19799/j.cnki.2095-4239.2025.0975.

2. 张桥保, 龚正良*, 杨勇*,“硫化物固态电解质材料界面及其表征的研究进展”,物理学报,2020, 69(22): 228803. doi: 10.7498/aps.69.20201581 (入选物理学报2022年度最有影响论文)

3.陆敬予, 柯承志, 龚正良, 李德平*, 慈立杰*, 张力, 张桥保*,“原位表征技术在全固态锂电池中的应用”,物理学报,2021, 70(19): 198102, doi: 10.7498/aps.70.20210531 (入选物理学报2023年度高被引论文)

4.柯承志, 肖本胜, 李苗, 陆敬予, 何洋, 张力, 张桥保*, “电极材料储锂行为及其机制的原位透射电镜研究进展”, 储能科学与技术, 2021, 10(4): 1219-1236.

5.朱思颖, 李辉阳, 胡忠利, 张桥保*, 赵金保, 张力* “锂离子电池氧化亚硅负极结构优化和界面改性研究进展”,物理化学学报, 2022, 38(6): 2103052.

6.李辉阳, 朱思颖, 李莎, 张桥保*, 赵金保, 张力*,“锂离子电池硅氧化物负极首次库伦效率的影响因素与提升策略”,高等学校化学学报, 2021, 42(8): 2342.

7.王华燕, 陈慧鑫*, 张桥保*, 张力,“生物质碳材料作为钠/钾离子电池负极材料的研究进展”,中国材料进展, 2021, 40(08):596-606. doi:10.7502/j.issn.1674-3962.202106013

书籍:

1. 张桥保,吴贤文,陆敬予,伊廷锋;“电池材料——合成,表征与应用”,北京:化学工业出版社,2022,https://cip.com.cn/Book/Index/49252。获中国石油和化学工业优秀出版物奖•图书奖二等奖。

2. 张桥保,柯小行,唐永福;“能源材料的原位透射电子显微分析”,北京:化学工业出版社,2026,待出版。

3. 张桥保;“固态电池基础科学和产业实践”,北京:化学工业出版社,2026,待出版。

博士后招聘(长期有效)

拟招聘研究方向:材料化学类(有电池研究背景者优先)

1. 锂离子/金属电池固态电解质/聚合物固态电解质研究;

2. 锂/钠离子/金属电池液态电解液设计和优化;

3. 锂离子电池/钠离子电池合金负极材料创制;

4. 电池界面原位显微和谱学表征

博士后待遇及优势:

(1)聘期两年,税前年薪大于20万。条件优秀者,可以面谈,年薪税前24-44万。另可按规定享受厦门市政策性补贴;

(2)可按规定申请参评助理研究员、副研究员等专业技术职务任职资格;

(3)支持博士后赴国(境)外高水平高校或科研机构开展学术交流。课题组目前与美国、香港等知名大学相关课题组建立了深度的合作,将提供良好的个人发展空间与合作交流的机会;

(4)出站后成绩优异者可优先推荐加入本研究团队或者学院学校其它课题组,可申请南强B类副教授或助理教授等职务;

(5)提供校内博士后公寓(临近幼儿园、超市),未租住的可享受租房补贴;

(6)享受健康体检、职工互助医疗保险、工会节日慰问等教职工福利;

(7)解决子女入托、入学问题

学位 职称 教授,博士生导师
研究室 所在部门
电子邮件 zhangqiaobao@xmu.edu.cn 电话
课题组网站

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