Polysulfide-driven low charge overpotential for aprotic lithium-oxygen batteries

被引:4
作者
Zhou, Yin [1 ,2 ,3 ]
Lyu, Zhiyang [2 ]
Liu, Zhenjie [4 ]
Dai, Wenrui [2 ,3 ]
Guo, Rui [2 ]
Yang, Jinlin [2 ,3 ]
Cui, Xinhang [3 ,5 ]
Zhao, Yong [6 ,7 ]
Lin, Ming [8 ]
Lai, Min [1 ]
Peng, Zhangquan [4 ]
Chen, Wei [2 ,3 ,5 ]
机构
[1] Nanjing Univ Informat Sci & Technol, Sch Phys & Optoelect Engn, Nanjing 210044, Jiangsu, Peoples R China
[2] Natl Univ Singapore, Dept Chem, 3 Sci Dr 3, Singapore 117543, Singapore
[3] Natl Univ Singapore Suzhou, Res Inst, Suzhou 215123, Peoples R China
[4] Chinese Acad Sci, Changchun Inst Appl Chem, State Key Lab Electroanalyt Chem, Changchun 130022, Jilin, Peoples R China
[5] Natl Univ Singapore, Dept Phys, 2 Sci Dr 3, Singapore 117543, Singapore
[6] Nanchang Univ, Inst Adv Study, Nanchang 330031, Jiangxi, Peoples R China
[7] Nanchang Univ, Dept Phys, Nanchang 330031, Jiangxi, Peoples R China
[8] ASTAR, Inst Mat Res & Engn, 2 Fusionopolis Way Innovis, Singapore, Singapore
基金
新加坡国家研究基金会; 中国国家自然科学基金;
关键词
LI-O-2; BATTERIES; CATALYTIC-ACTIVITY; CYCLING STABILITY; RATIONAL DESIGN; CATHODE; ELECTROLYTES; ARCHITECTURE; REDUCTION; PEROXIDE;
D O I
10.1039/c9ta00267g
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Developing Li-O-2 batteries with high-rate and long-cycle performance remains a major challenge due to the high charge overpotential induced by the insulating discharge products of Li2O2. Herein, we develop a strategy to achieve high-rate and excellent cycle performance Li-O-2 batteries by introducing sacrificial lithium polysulfide in aprotic electrolyte to realize ultralow charge overpotential, where the discharge products of Li2O2 have been replaced with lithium thiosulfate. In a demonstration study using Li2S6 during the discharge process, O-2 receives electrons and reacts with Li2S6 to form thiosulfate intermediates, which further accept electrons and convert Li2S6 to Li2S2 and Li2S4O6. The charge process is divided into three stages: the oxidation of low-order lithium polysulfide to high-order polysulfide, Li2S2O3 to Li2S4O6, and high-order polysulfide to sulfur, respectively, resulting in low charge overpotential. Despite gradual consumption of Li2S6 by the solvent, the electrochemical performance significantly increases. At a high current density of 0.5 A g(-1), the battery with CNTs as the cathode and Li2S6 as the electrolyte additive demonstrates an excellent cycle performance of 147 cycles with a low initial charge overpotential of 0.19 V at a fixed capacity of 500 mA h g(-1). This study provides a promising strategy to design high-rate and long-cycle performance of Li-O-2 batteries by altering the discharge products.
引用
收藏
页码:8777 / 8784
页数:8
相关论文
共 50 条
[41]   Morphology of the Discharge Product in Non-aqueous Lithium-Oxygen Batteries: Furrowed Toroid Particles Correspond to a Lower Charge Voltage [J].
Tan, Peng ;
Shi, Le ;
Shyy, Wei ;
Zhao, Tianshou .
ENERGY TECHNOLOGY, 2016, 4 (03) :393-400
[42]   Mechanism and performance of lithium-oxygen batteries - a perspective [J].
Mahne, Nika ;
Fontaine, Olivier ;
Thotiyl, Musthafa Ottakam ;
Wilkening, Martin ;
Freunberger, Stefan A. .
CHEMICAL SCIENCE, 2017, 8 (10) :6716-6729
[43]   Liquid-Free Lithium-Oxygen Batteries [J].
Balaish, Moran ;
Peled, Emanuel ;
Golodnitsky, Diana ;
Ein-Eli, Yair .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2015, 54 (02) :436-440
[44]   The role of iodide in the formation of lithium hydroxide in lithium-oxygen batteries [J].
Tulodziecki, Michal ;
Leverick, Graham M. ;
Amanchukwu, Chibueze V. ;
Katayama, Yu ;
Kwabi, David G. ;
Barde, Fanny ;
Hammond, Paula T. ;
Shao-Horn, Yang .
ENERGY & ENVIRONMENTAL SCIENCE, 2017, 10 (08) :1828-1842
[45]   A multi-layered Fe2O3/graphene composite with mesopores as a catalyst for rechargeable aprotic lithium-oxygen batteries [J].
Feng, Ningning ;
Mu, Xiaowei ;
Zheng, Mingbo ;
Wang, Chaoqiang ;
Lin, Zixia ;
Zhang, Xueping ;
Shi, Yi ;
He, Ping ;
Zhou, Haoshen .
NANOTECHNOLOGY, 2016, 27 (36)
[46]   Understanding the Reaction Chemistry during Charging in Aprotic Lithium-Oxygen Batteries: Existing Problems and Solutions [J].
Shu, Chaozhu ;
Wang, Jiazhao ;
Long, Jianping ;
Liu, Hua-Kun ;
Dou, Shi-Xue .
ADVANCED MATERIALS, 2019, 31 (15)
[47]   Reactive oxygen species formed in organic lithium-oxygen batteries [J].
Schwager, Patrick ;
Dongmo, Saustin ;
Fenske, Daniela ;
Wittstock, Gunther .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2016, 18 (16) :10774-10780
[48]   Molecular Unravelling of the Structural Effect of Quinone Redox Mediators on Oxygen Reduction Reaction in Aprotic Lithium-Oxygen Batteries [J].
Su, Yuwei ;
Zhao, Zhiwei ;
Pang, Long ;
Wang, Erkang ;
Peng, Zhangquan .
NANO LETTERS, 2024, 24 (43) :13520-13527
[49]   Role of Defects in Low-Cost Perovskite Catalysts toward ORR and OER in Lithium-Oxygen Batteries [J].
Hegde, Guruprasad S. ;
Ghosh, Arpita ;
Badam, Rajashekar ;
Matsumi, Noriyoshi ;
Sundara, Ramaprabhu .
ACS APPLIED ENERGY MATERIALS, 2020, 3 (02) :1338-+
[50]   Polyoxometalate as a Nature-Inspired Bifunctional Catalyst for Lithium-Oxygen Batteries [J].
Lee, Jun-Seo ;
Lee, Cheolmin ;
Lee, Jae-Yun ;
Ryu, Jungki ;
Ryu, Won-Hee .
ACS CATALYSIS, 2018, 8 (08) :7213-7221