Nanofiber-Based Composite Solid Electrolytes for Solid-State Batteries: from Fundamentals to Applications

被引:4
作者
Nguyen, An-Giang [1 ,2 ]
Vu, Trang Thi [3 ]
Le, Hang T. T. [4 ]
Verma, Rakesh [5 ]
Nguyen, Phi Long [2 ]
Phung, Viet Bac T. [2 ]
Park, Chan-Jin [1 ]
机构
[1] Chonnam Natl Univ, Sch Mat Sci & Engn, 77 Yongbong Ro, Gwangju 61186, South Korea
[2] VinUniversity, Ctr Environm Intelligence, Hanoi 100000, Vietnam
[3] Chonnam Natl Univ, Sch Polymer Sci & Engn, 77 Yongbong Ro, Gwangju 61186, South Korea
[4] Hanoi Univ Sci & Technol, Sch Chem & Life Sci, Dept Chem Engn, 1 Dai Co Viet Rd, Hanoi 100000, Vietnam
[5] Univ Allahabad, Dept Chem, Prayagraj 211002, India
基金
新加坡国家研究基金会;
关键词
Nanofibers; Solid-state batteries; Composite solid electrolytes; Hybrid electrolytes; Ionic conductivity; POLYMER ELECTROLYTE; STABILITY; INTERFACE; NANOTUBES; ALUMINA;
D O I
10.1007/s42765-024-00508-3
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Recent advancements in next-generation rechargeable batteries have focused on solid-state batteries (SSBs) due to their promising potential for improved energy density and safety. Among the various types of solid electrolytes, composite solid electrolytes (CSEs), composed of fillers and salts dispersed within a polymer matrix, have gained significant attention for their balanced properties of ionic conductivity and stability toward both electrodes, making them more suitable for practical SSB applications. In CSEs, the relationship between structure, properties, and performance is crucial. Unfortunately, conventional CSEs are still limited by randomly distributed fillers and agglomeration phenomena, which may impede ion transportation. Nanofiber fillers, characterized by their long-range structure, high surface area-to-volume ratios, and high aspect ratios, have the potential to significantly enhance CSE properties. Furthermore, they can shorten the ion-migration pathway and be aligned in a single direction. In this review, current technologies related to nanofiber-based CSEs are summarized. Typically, recent strategies for nanofiber structural design and synthesis, from principles to practical applications, are systematically reviewed. Subsequently, promising approaches to implementing nanofiber-based CSEs in SSBs with superior electrochemical performance and cyclability are discussed. Thus, this review provides a comprehensive overview of the state-of-the-art nanofiber-based CSEs for high-performance SSBs, which have the potential to safely accelerate the development of next-generation rechargeable batteries.
引用
收藏
页码:679 / 708
页数:30
相关论文
共 111 条
[71]   Crosslinked Nanofiber-Reinforced Solid-State Electrolytes with Polysulfide Fixation Effect Towards High Safety Flexible Lithium-Sulfur Batteries [J].
Sheng, Jinzhi ;
Zhang, Qi ;
Sun, Chongbo ;
Wang, Junxiong ;
Zhong, Xiongwei ;
Chen, Biao ;
Li, Chuang ;
Gao, Runhua ;
Han, Zhiyuan ;
Zhou, Guangmin .
ADVANCED FUNCTIONAL MATERIALS, 2022, 32 (40)
[72]   Recent Advances on Electrospun Nanofiber Materials for Post-lithium Ion Batteries [J].
Shi, Fangyi ;
Chen, Chunhong ;
Xu, Zheng-Long .
ADVANCED FIBER MATERIALS, 2021, 3 (05) :275-301
[73]   A reflection on polymer electrolytes for solid-state lithium metal batteries [J].
Song, Ziyu ;
Chen, Fangfang ;
Martinez-Ibanez, Maria ;
Feng, Wenfang ;
Forsyth, Maria ;
Zhou, Zhibin ;
Armand, Michel ;
Zhang, Heng .
NATURE COMMUNICATIONS, 2023, 14 (01)
[74]   Ultralight, Recoverable, and High-Temperature-Resistant SiC Nanowire Aerogel [J].
Su, Lei ;
Wang, Hongjie ;
Niu, Min ;
Fan, Xingyu ;
Ma, Mingbo ;
Shi, Zhongqi ;
Guo, Sheng-Wu .
ACS NANO, 2018, 12 (04) :3103-3111
[75]   Composite solid electrolyte comprising poly(propylene carbonate) and Li1.5Al0.5Ge1.5(PO4)3 for long-life all-solid-state Li-ion batteries [J].
Sung, Bong-Joon ;
Didwal, Pravin N. ;
Verma, Rakesh ;
Nguyen, An-Giang ;
Chang, Duck Rye ;
Park, Chan-Jin .
ELECTROCHIMICA ACTA, 2021, 392
[76]   Stabilizing interface of novel 3D-hierarchical porous carbon for high-performance lithium-sulfur batteries [J].
Vu, Duc-Luong ;
Kim, Do-Young ;
Nguyen, An-Giang ;
Park, Chan-Jin .
ELECTROCHIMICA ACTA, 2022, 418
[77]   Hybrid electrolytes for solid-state lithium batteries: Challenges, progress, and prospects [J].
Vu, Trang Thi ;
Cheon, Hyeong Jun ;
Shin, Seo Young ;
Jeong, Ganghoon ;
Wi, Eunsol ;
Chang, Mincheol .
ENERGY STORAGE MATERIALS, 2023, 61
[78]   Electrospinning techniques for inorganic-organic composite electrolytes of all-solid-state lithium metal batteries: a brief review [J].
Wang, Peng ;
Liu, Jin-Hua ;
Cui, Wenbo ;
Li, Xuehao ;
Li, Zhi ;
Wan, Yong ;
Zhang, Jun ;
Long, Yun-Ze .
JOURNAL OF MATERIALS CHEMISTRY A, 2023, 11 (31) :16539-16558
[79]   Ultrathin Solid Polymer Electrolyte Design for High-Performance Li Metal Batteries: A Perspective of Synthetic Chemistry [J].
Wang, Qian ;
Wang, Shi ;
Lu, Tiantian ;
Guan, Lixiang ;
Hou, Lifeng ;
Du, Huayun ;
Wei, Huan ;
Liu, Xiaoda ;
Wei, Yinghui ;
Zhou, Henghui .
ADVANCED SCIENCE, 2023, 10 (01)
[80]   Ultrathin All-Inorganic Halide Solid-State Electrolyte Membranes for All-Solid-State Li-Ion Batteries [J].
Wang, Shuhao ;
Liao, Yaqi ;
Li, Shiya ;
Cui, Can ;
Liang, Jianing ;
Du, Gaofeng ;
Tong, Zhaoming ;
Yuan, Lixia ;
Zhai, Tianyou ;
Li, Huiqiao .
ADVANCED ENERGY MATERIALS, 2024, 14 (06)