Electrochemical studies on symmetric solid-state Na-ion full cell using Na3V2(PO4)3 electrodes and polymer composite electrolyte

被引:44
作者
Bag, Sourav [1 ,2 ]
Zhou, Chengtian [1 ]
Reid, Samuel [2 ]
Butler, Shantel [2 ]
Thangadurai, Venkataraman [1 ]
机构
[1] Univ Calgary, Dept Chem, 2500 Univ Dr NW, Calgary, AB T2N 1N4, Canada
[2] Geometr Energy Corp, 630 8th Ave SW 600, Calgary, AB T2P 1G6, Canada
关键词
Composite polymer electrolytes; Solid-state Na-ion battery; Na3V2(PO4)(3); Interfaces; CONDUCTIVITY ENHANCEMENT; LITHIUM BATTERIES; SODIUM; INTERCALATION; PHASES; NANOCOMPOSITES; TEMPERATURE; NACF3SO3; FILLER; METAL;
D O I
10.1016/j.jpowsour.2020.227954
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
Ubiquitous low-cost sodium ore is abundant and increasingly of interest for sodium-based battery research for grid-scale energy storage systems. The conventional organic liquid electrolytes in currently used sodium-based batteries endure inflammability, thermal instability, and risk of safety issues. The recent trend in developing solid-state-Li batteries also thrives on exploring the all-solid-state Na battery. Herein, we report a solid-state Na-ion full cell working at room temperature using a polyvinylidene fluoride (PVDF)-based composite polymer electrolyte and NaZr2(PO4)(3)-structured Na3V2(PO4)(3 )(NVP) electrode. PVDF-based composite polymer electrolyte (CPE) with NaCF3SO3 salt and SiO2 filler displays high conductivity with electrochemical stability. The symmetric solid-state full cell delivers a specific capacity of 76 mA h g(-1)at 0.5C rate, and a specific energy of 126 W h kg(-1) based on the total mass of the NVP cathode only. The solid-state Na-ion full cell can retain 70% of its initial specific capacity after 100 continuous charge-discharge cycles.
引用
收藏
页数:10
相关论文
共 65 条
[1]  
[Anonymous], [No title captured]
[2]   Best Practices for Mitigating Irreversible Capacity Loss of Negative Electrodes in Li-Ion Batteries [J].
Aravindan, Vanchiappan ;
Lee, Yun-Sung ;
Madhavi, Srinivasan .
ADVANCED ENERGY MATERIALS, 2017, 7 (17)
[3]   A conceptual review on polymer electrolytes and ion transport models [J].
Aziz, Shujahadeen B. ;
Woo, Thompson J. ;
Kadir, M. F. Z. ;
Ahmed, Hameed M. .
JOURNAL OF SCIENCE-ADVANCED MATERIALS AND DEVICES, 2018, 3 (01) :1-17
[4]   LiF modified stable flexible PVDF-garnet hybrid electrolyte for high performance all-solid-state Li-S batteries [J].
Bag, Sourav ;
Zhou, Chengtian ;
Kim, Patrick J. ;
Pol, Vilas G. ;
Thangadurai, Venkataraman .
ENERGY STORAGE MATERIALS, 2020, 24 :198-207
[5]   Electrochemical in situ investigations of SEI and dendrite formation on the lithium metal anode [J].
Bieker, Georg ;
Winter, Martin ;
Bieker, Peter .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2015, 17 (14) :8670-8679
[6]   Decoupling segmental relaxation and ionic conductivity for lithium-ion polymer electrolytes [J].
Bresser, Dominic ;
Lyonnard, Sandrine ;
Iojoiu, Cristina ;
Picard, Lionel ;
Passerini, Stefano .
MOLECULAR SYSTEMS DESIGN & ENGINEERING, 2019, 4 (04) :779-792
[7]   A critical analysis of the α, β and γ phases in poly(vinylidene fluoride) using FTIR [J].
Cai, Xiaomei ;
Lei, Tingping ;
Sun, Daoheng ;
Lin, Liwei .
RSC ADVANCES, 2017, 7 (25) :15382-15389
[8]   COMPOSITE POLYMER ELECTROLYTES [J].
CAPUANO, F ;
CROCE, F ;
SCROSATI, B .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1991, 138 (07) :1918-1922
[9]   Electrolyte design strategies and research progress for room-temperature sodium-ion batteries [J].
Che, Haiying ;
Chen, Suli ;
Xie, Yingying ;
Wang, Hong ;
Amine, Khalil ;
Liao, Xiao-Zhen ;
Ma, Zi-Feng .
ENERGY & ENVIRONMENTAL SCIENCE, 2017, 10 (05) :1075-1101
[10]   PEO/garnet composite electrolytes for solid-state lithium batteries: From "ceramic-in-polymer" to "polymer-in-ceramic" [J].
Chen, Long ;
Li, Yutao ;
Li, Shuai-Peng ;
Fan, Li-Zhen ;
Nan, Ce-Wen ;
Goodenough, John B. .
NANO ENERGY, 2018, 46 :176-184