l钠离子电池正负极材料
l基于转换反应的新型二次电池电极材料的设计
l新型二维材料MXenes的可控合成及应用
代表性论文,详见:郭鑫代表性论文
附件:
郭鑫代表性论文:
1.Gao, H.; Li, J.; Zhang, F.; Li, C.; Xiao, J.; Nie, X.; Zhang, G.; Xiao, Y.; Zhang, D.;Guo, X.;*Wang, Y.; Kang, Y.-M.; Wang, G.;*Liu, H.*, Revealing the Potential and Challenges of High-Entropy Layered Cathodes for Sodium-Based Energy Storage.Adv. Energy Mater.2024,14, 2304529.
2.Li, J.; Hao, J.; Yuan, Q.; Wang, R.; Marlton, F.; Wang, T.*; Wang, C.;Guo, X.;*Wang, G.*, The effect of salt anion in ether-based electrolyte for electrochemical performance of sodium-ion batteries: A case study of hard carbon.Carbon Energy2024,DOI:org/10.1002/cey2.518.
3.Yang, J.;Guo, X.;*Gao, H.; Wang, T.;*Liu, Z.; Yang, Q., Yao, H., Li, J.; Wang, C.; Wang, G.*, A High-Performance Alloy-Based Anode Enabled by Surface and Interface Engineering for Wide-Temperature Sodium-Ion Batteries.Adv. Energy Mater.2023, 13(29), 2300351.
4.Huang, Z.; Jaumaux, P.; Sun, B.;Guo, X.;*Zhou, D.; Shanmukaraj, D.; Armand, M.; Rojo, T.; Wang, G.*, High-Energy Room-Temperature Sodium–Sulfur and Sodium–Selenium Batteries for Sustainable Energy Storage.Electrochem. Energy Rev.2023,6(1), 21.
5.Guo, X.; Gao, H.; Wang, S.; Yang, G.; Zhang, X.; Zhang, J.; Liu, H.; Wang, G., MXene-Based Aerogel Anchored with Antimony Single Atoms and Quantum Dots for High-Performance Potassium-Ion Batteries.Nano Lett.2022, 22 (3), 1225.
6.Wang, S.; Zhao S.;Guo, X.;*Wang, G.*, Two-Dimensional Material-Based Heterostructures for Rechargeable Batteries.Adv. Energy Mater.2021, 12 (4), 2100864.
7.Li, P.;Guo, X.;*Zang, R.; Wang, S.; Zuo, Y.; Man, Z.; Li, P.; Liu, S.; Wang, G.*, Nanoconfined SnO2/SnSe2heterostructures in N-doped carbon nanotubes for high-performance sodium-ion batteries.Chem. Eng. J.2021,418, 129501.
8.Yang, J.; Wang T.;Guo, X.;*Sheng, X.; Li, J.; Wang, C.;Wang, G.,Flexible sodium-ion capacitors boosted by high electrochemically-reactive and structurally-stable Sb2S3nanowire/Ti3C2TxMXene film anodes.Nano Res.2021, 16 (4), 5592-5600.
9.Guo, X.; Zhang, W.; Zhang, J.; Zhou, D.; Tang, X.; Xu, X.; Li, B.; Liu, H.; Wang, G., Boosting Sodium Storage in Two-Dimensional Phosphorene/Ti3C2TxMXene Nanoarchitectures with Stable Fluorinated Interphase.ACS Nano2020, 14 (3), 3651-3659.
10.Guo, X.; Gao, H.; Wang, G., A Robust Transition-Metal Sulfide Anode Material Enabled by Truss Structures.Chem2020, 6 (2), 334-336.
11.Zhang, F.†;Guo, X.†; Xiong, P.; Zhang, J.; Song, J.; Yan, K.; Gao, X.; Liu, H.; Wang, G., Interface Engineering of MXene Composite Separator for High-Performance Li–Se and Na–Se Batteries.Adv. Energy Mater.2020, 10 (20), 2000446.
12.Zhang, J.; Zhao, Y.;Guo, X.;Chen, C.; Dong, C.-L.; Liu, R.-S.; Han, C.-P.; Li, Y.; Gogotsi, Y.; Wang, G., Single platinum atoms immobilized on an MXene as an efficient catalyst for the hydrogen evolution reaction.Nat. Cat.2018, 1 (12), 985-992.
13.Tang X.†;Guo, X.†;Wu W.; Wang, G., Two-Dimensional metal carbides and nitrides (MXenes) as high-performance electrode materials for lithium-based batteries.Adv. Energy Mater.2018, 8, 1801897.
14.Bao, W.†; Tang, X.†;Guo, X.†; Choi, S.; Wang, C.; Gogotsi, Y.; Wang, G., Porous cryo-dried MXene for efficient capacitive deionization.Joule2018, 2, 778-787.
15.Guo, X.; Zhang J.; Song J.; Wu. W.; Liu H.; Wang G., MXene encapsulated titanium oxide nanospheres for ultra-stable and fast sodium storage.Energy Storage Mater.2018, 14, 306-313.
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