Lithium-ion batteries: outlook on present, future, and hybridized technologies

被引:1787
作者
Kim, Taehoon [1 ]
Song, Wentao [1 ]
Son, Dae-Yong [1 ]
Ono, Luis K. [1 ]
Qi, Yabing [1 ]
机构
[1] Grad Univ, Okinawa Inst Sci & Technol, Energy Mat & Surface Sci Unit EMSSU, 1919-1 Tancha, Onna Son, Okinawa 9040495, Japan
关键词
X-RAY-DIFFRACTION; ORGANOMETAL HALIDE PEROVSKITES; ORGANIC ELECTRODE MATERIALS; CHEMICAL-VAPOR-DEPOSITION; THIN-FILM LITHIUM; LI-AIR BATTERIES; ELECTROCHEMICAL PROPERTIES; CATHODE MATERIALS; ENERGY-STORAGE; HIGH-CAPACITY;
D O I
10.1039/c8ta10513h
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
Lithium-ion batteries (LIBs) continue to draw vast attention as a promising energy storage technology due to their high energy density, low self-discharge property, nearly zero-memory effect, high open circuit voltage, and long lifespan. In particular, high-energy density lithium-ion batteries are considered as the ideal power source for electric vehicles (EVs) and hybrid electric vehicles (HEVs) in the automotive industry, in recent years. This review discusses key aspects of the present and the future battery technologies on the basis of the working electrode. We then discuss how lithium-ion batteries evolve to meet the growing demand on high charge capacity and electrode stability. An account of a stand-alone energy device (off-grid system) that combines an energy harvesting technology with a lithium-ion battery is also provided. The main discussion is categorized into three perspectives such as the evolution from the conventional to the advanced LIBs (e.g., Li-rich transition metal oxide and Ni-rich transition metal oxide batteries), to the state-of-the-art LIBs (e.g., Li-air, Li-sulfur batteries, organic electrode batteries, solid-state batteries, and Li-CO2 batteries), and to the hybridized LIBs (e.g., metal halide perovskite batteries).
引用
收藏
页码:2942 / 2964
页数:23
相关论文
共 213 条
[1]   Lanthanum titanate and lithium lanthanum titanate thin films grown by atomic layer deposition [J].
Aaltonen, Titta ;
Alnes, Mari ;
Nilsen, Ola ;
Costelle, Leila ;
Fjellvag, Helmer .
JOURNAL OF MATERIALS CHEMISTRY, 2010, 20 (14) :2877-2881
[2]   A polymer electrolyte-based rechargeable lithium/oxygen battery [J].
Abraham, KM ;
Jiang, Z .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1996, 143 (01) :1-5
[3]   LI+-CONDUCTIVE SOLID POLYMER ELECTROLYTES WITH LIQUID-LIKE CONDUCTIVITY [J].
ABRAHAM, KM ;
ALAMGIR, M .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1990, 137 (05) :1657-1657
[4]   Photo-Rechargeable Organo-Halide Perovskite Batteries [J].
Ahmad, Shahab ;
George, Chandramohan ;
Beesley, David J. ;
Baumberg, Jeremy J. ;
De Volder, Michael .
NANO LETTERS, 2018, 18 (03) :1856-1862
[5]  
AHN BT, 1991, SOLID STATE IONICS, V46, P237, DOI 10.1016/0167-2738(91)90221-V
[6]   INVESTIGATION INTO USE OF QUINONE COMPOUNDS FOR BATTERY CATHODES [J].
ALT, H ;
BINDER, H ;
SANDSTEDE, G ;
KOHLING, A .
ELECTROCHIMICA ACTA, 1972, 17 (05) :873-+
[7]  
[Anonymous], 2015, Adv. Energy Mater, DOI DOI 10.1002/AENM.201401408
[8]   KINETICS AND STABILITY OF THE LITHIUM ELECTRODE IN POLY(METHYLMETHACRYLATE)-BASED GEL ELECTROLYTES [J].
APPETECCHI, GB ;
CROCE, F ;
SCROSATI, B .
ELECTROCHIMICA ACTA, 1995, 40 (08) :991-997
[9]   Twelve Principles for Green Energy Storage in Grid Applications [J].
Arbabzadeh, Maryam ;
Johnson, Jeremiah X. ;
Keoleian, Gregory A. ;
Rasmussen, Paul G. ;
Thompson, Levi T. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2016, 50 (02) :1046-1055
[10]   Building better batteries [J].
Armand, M. ;
Tarascon, J. -M. .
NATURE, 2008, 451 (7179) :652-657