[1] Chengxiang Tian; Pengcheng Li, Xin Hu, et al. Two‐Step Catalytic Against Polysulfide Shuttling to Enhance Redox Conversion for Advanced Lithium–Sulfur Batteries[J].Small, 2024, 20 (12), 2306928.
[2] Haobin Yang, Chengxiang Tian, Jiashuo Wang et al. Simple Synthesis of MoSSe Heterojunction Nanosphere for Ultrafast Kinetics and High-Performance Sodium-Ion Battery[J], Journal of Alloys and Compounds, 2024 1007, 176397.
[3] Chengxiang Tian, Songya Cui, Nan Meng, et al. Three-Dimensional Flower Spheres MoSe2/NiSe Heterostructure with Fast Kinetic and Stable Structure for Durable Sodium-Ion Storage[J], Applied Surface Science, 2023, 616: 156511.
[4] Weiqi Yao, Chengxiang Tian, Jie Xu, et al. P-Doped NiTe2 with Te-Vacancies in Lithium–Sulfur Batteries Prevents Shuttling and Promotes Polysulfide Conversion[J], Advanced Materials, 2022, 34(11): 2106370.
[5] Yu Zheng, Chengxiang Tian, Yitian Wu, et al. Dual-engineering of ammonium vanadate for enhanced aqueous and quasi-solid-state zinc ion batteries[J],Energy Storage Materials 52 (2022) 664–674.
[6] Chengxiang Tian; Bo Li, Xia Xiang, et al. Melamine Foam Derived 2H/1T MoS2 as Flexible Interlayer with Efficient Polysulfides Trapping and Fast Li+ Diffusion to Stabilize Li-S Batteries[J]. ACS Applied Materials & Interfaces, 2021, 13, 6229-6240.
[7] Chengxiang Tian, Juwei Wu, Zheng Ma, et al. A Melt-Diffusion Strategy for Tunable Sulfur Loading on CC@MoS2 for Lithium–Sulfur Batteries[J]. Energy Reports, 2020, 6, 172-180.