Performance improvements of pouch-type flexible thin-film lithium-ion batteries by modifying sequential screen-printing process

Abstract A pouch-type flexible thin-film lithium-ion battery is fabricated by sequential screen-printing (wet) processes to produce consecutive layers of a current collector, positive and negative electrodes, and a gel polymer electrolyte. Optimum conditions of each process are determined by adjusting the paste or slurry compositions to achieve lower surface resistance of each layer (current collector and electrodes) and higher ionic conductivity of the gel polymer electrolyte. The fabricated flexible thin-film lithium-ion battery (5.5 × 5.5 cm 2 , 325 μm thick) shows superior electrochemical performance, including an energy density of 292.3 Wh L −1 based on electrode size (4.0 × 4.0 cm 2 ), an initial discharge capacity of 2.5 mAh cm −2 per electrode area, and capacity retention ratio of over 68% at the 50th cycle. To further improve the battery performance, the wet processes are modified by adopting hybrid (dry-wet) processes, which mainly consist of the formation of metallic current collector layers (Al and Cu) using a thermal evaporator and another optimized gel polymer electrolyte, to achieve an energy density of 332.8 Wh L −1 and capacity retention ratio of 84% at the 50th cycle. Cell flexibility is also confirmed by stable open circuit voltages after the system is subjected to several hundred iterations of bending, stretching, and even folding. There is the possibility that the suggested wet and dry-wet processes can be expanded to a high-speed mass-production roll-to-roll process.

[1]  Guangmin Zhou,et al.  Progress in flexible lithium batteries and future prospects , 2014 .

[2]  John A. Stankovic,et al.  When Sensor and Actuator Networks Cover the World , 2008 .

[3]  Kwang Man Kim,et al.  3.0 V-class film-type lithium primary battery with highly improved energy density , 2010 .

[4]  Hyeong-Jin Kim,et al.  Electrochemical properties of LiCoO2 thick-film cathodes prepared by screen-printing technique , 2006 .

[5]  S. Hyun,et al.  Mechanical and electrical properties of a LiCoO2 cathode prepared by screen-printing for a lithium-ion micro-battery , 2007 .

[6]  Jean-Marie Tarascon,et al.  Performance of Bellcore's plastic rechargeable Li-ion batteries , 1996 .

[7]  Zhiyu Jiang,et al.  Electrochemical properties of LiCoO2 thin film electrode prepared by ink-jet printing technique , 2008 .

[8]  Kwang Man Kim,et al.  The Effect of Silica Addition on the Properties of Poly((vinylidene fluoride)‐co‐hexafluoropropylene)‐Based Polymer Electrolytes , 2001 .

[9]  S. Hyun,et al.  Characterization of a LiCoO2 thick film by screen-printing for a lithium ion micro-battery , 2006 .

[10]  Min-Sang Song,et al.  Strategic dispersion of carbon black and its application to ink-jet-printed lithium cobalt oxide ele , 2011 .

[11]  Zhiyu Jiang,et al.  A novel and facile route of ink-jet printing to thin film SnO2 anode for rechargeable lithium ion batteries , 2006 .

[12]  Young-Gi Lee,et al.  Design of 1.5 V thin and flexible primary batteries for battery-assisted passive (BAP) radio frequency identification (RFID) tag , 2010 .