4.3 Article

Temperature effect on electrochemical performances of Li-ion hybrid capacitors

Related references

Note: Only part of the references are listed.
Article Chemistry, Physical

Low-temperature performance of Li-ion batteries: The behavior of lithiated graphite

A. Senyshyn et al.

JOURNAL OF POWER SOURCES (2015)

Review Chemistry, Multidisciplinary

Insertion-Type Electrodes for Nonaqueous Li-Ion Capacitors

Vanchiappan Aravindan et al.

CHEMICAL REVIEWS (2014)

Article Chemistry, Physical

Development and characterization of Li-ion capacitor pouch cells

W. J. Cao et al.

JOURNAL OF POWER SOURCES (2014)

Article Chemistry, Physical

Spinel LiMn2O4 nanohybrid as high capacitance positive electrode material for supercapacitors

F. X. Wang et al.

JOURNAL OF POWER SOURCES (2014)

Article Chemistry, Multidisciplinary

Highly conductive and stretchable polymer composites based on graphene/MWCNT network

Mengting Chen et al.

CHEMICAL COMMUNICATIONS (2013)

Article Multidisciplinary Sciences

Electrochemical performance of MCMB/(AC+LiFePO4) lithium-ion capacitors

Ping LiNa et al.

CHINESE SCIENCE BULLETIN (2013)

Article Chemistry, Physical

Gas evolution from cathode materials: A pathway to solvent decomposition concomitant to SEI formation

Katie L. Browning et al.

JOURNAL OF POWER SOURCES (2013)

Article Chemistry, Physical

Graphene-based Li-ion hybrid supercapacitors with ultrahigh performance

Kai Leng et al.

NANO RESEARCH (2013)

Article Chemistry, Multidisciplinary

The synergy effect on Li storage of LiFePO4 with activated carbon modifications

Bo Wang et al.

RSC ADVANCES (2013)

Article Chemistry, Multidisciplinary

Second generation 'nanohybrid supercapacitor': Evolution of capacitive energy storage devices

Katsuhiko Naoi et al.

ENERGY & ENVIRONMENTAL SCIENCE (2012)

Article Chemistry, Physical

Composite LiFePO4/AC high rate performance electrodes for Li-ion capacitors

N. Boeckenfeld et al.

JOURNAL OF POWER SOURCES (2011)

Article Electrochemistry

Effects of current densities on the formation of LiCoO2/graphite lithium ion battery

Yan-Bing He et al.

JOURNAL OF SOLID STATE ELECTROCHEMISTRY (2011)

Article Chemistry, Physical

A high rate, high capacity and long life (LiMn2O4 + AC)/Li4Ti5O12 hybrid battery-supercapacitor

Xuebu Hu et al.

JOURNAL OF POWER SOURCES (2009)

Article Electrochemistry

Bimodal porous carbon as a negative electrode material for lithium-ion capacitors

Sang-Wook Woo et al.

ELECTROCHEMISTRY (2007)

Article Electrochemistry

A (LiFePO4-AC)/Li4Ti5O12 hybrid battery capacitor

XueBu Hu et al.

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2007)

Article Electrochemistry

Disordered carbon negative electrode for electrochemical capacitors and high-rate batteries

Nobuhiro Ogihara et al.

ELECTROCHIMICA ACTA (2006)

Article Electrochemistry

An advanced hybrid electrochemical capacitor that uses a wide potential range at the positive electrode

Taira Aida et al.

ELECTROCHEMICAL AND SOLID STATE LETTERS (2006)

Article Electrochemistry

Electrochemical investigations on advanced lithium-ion batteries by three-electrode measurements

MS Wu et al.

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2005)

Article Electrochemistry

Development of a lithium-type advanced energy storage device

A Yoshino et al.

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2004)

Article Electrochemistry

An asymmetric hybrid nonaqueous energy storage cell

GG Amatucci et al.

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2001)

Article Electrochemistry

The limits of low-temperature performance of Li-ion cells

CK Huang et al.

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2000)