1 |
Revisiting the open-framework zinc hexacyanoferrate: The role of ternary electrolyte and sodium-ion intercalation mechanism Niu L, Chen L, Zhang J, Jiang P, Liu ZP Journal of Power Sources, 380, 135, 2018 |
2 |
Sorption of H3BO3/B(OH)(4)(-) on calcined LDHs including different divalent metals Qiu XH, Sasaki K, Osseo-Asare K, Hirajima T, Ideta K, Miyawaki J Journal of Colloid and Interface Science, 445, 183, 2015 |
3 |
Evaluation of Electrochemical Charge Storage Mechanism and Structural Changes in Intertwined MoO3-MWCNTs Composites for Supercapacitor Applications Shakir I, Sarfraz M Electrochimica Acta, 147, 380, 2014 |
4 |
Tin-coated graphite electrodes as composite anodes for Li-ion batteries. Effects of tin coatings thickness toward intercalation behavior Nobili F, Mancini M, Stallworth PE, Croce F, Greenbaum SG, Marassi R Journal of Power Sources, 198, 243, 2012 |
5 |
Electrochemical characteristics and intercalation mechanism of ZnS/C composite as anode active material for lithium-ion batteries He L, Liao XZ, Yang K, He YS, Wen W, Ma ZF Electrochimica Acta, 56(3), 1213, 2011 |
6 |
The effect of guest molecular architecture and host crystallinity upon the mechanism of the intercalation reaction Sun LY, O'Reilly JY, Kong DY, Su JY, Boo WJ, Sue HJ, Clearfield A Journal of Colloid and Interface Science, 333(2), 503, 2009 |
7 |
Mechanistic study on lithium intercalation using a restricted reaction field in LiNi0.5Mn0.5O2 Sakamoto K, Konishi H, Sonoyama N, Yamada A, Tamura K, Mizuki J, Kanno R Journal of Power Sources, 174(2), 678, 2007 |
8 |
Electrolytes for advanced batteries Blomgren GE Journal of Power Sources, 81-82, 112, 1999 |
9 |
Some features of crystalline alpha-titanium hydrogenphosphate, modified sodium and n-butylammonium forms and thermodynamics of ionic exchange with K+ and Ca2+ Nunes LH, Airoldi C Thermochimica Acta, 328(1-2), 297, 1999 |
10 |
Study of lithium insertion in hard carbon made from cotton wool Peled E, Eshkenazi V, Rosenberg Y Journal of Power Sources, 76(2), 153, 1998 |