TY - JOUR
T1 - Flashlight-induced Ultrafast, Scalable Surface Activation of Highly Loaded Graphite Composite Anode
AU - Choi, Su Hyun
AU - Jang, Sohui
AU - Kim, Hyuntae
AU - Seok, Jae Young
AU - Yang, Wooseok
AU - Kim, Seok
AU - Cho, Young Tae
AU - Kwon, Sin
AU - Woo, Kyoohee
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2025/4/22
Y1 - 2025/4/22
N2 - Herein, a straightforward route for fabricating highly loaded graphite composite anodes with enhanced electrochemical performance via ultrafast, scalable flashlight irradiation is presented. When a flashlight irradiates the surface of a thick graphite anode, instantaneous and non-equilibrium photo-thermochemical interactions occur between the flashlight and the constituent materials of the anode. As a result, a porous structure (through which the electrolyte easily penetrates), a large reaction site, improved conductivity, as well as phase transformation of active graphite material can be developed on the anode surface, which can facilitate ion and electron transport at the interface with the electrolyte. By fabricating a half-cell using this flash-activated, highly loaded graphite anode, it is found that the electrochemical performance, such as increases in the charge density, rate capability, and stability can be improved. Finally, the roll-to-roll (R2R) compatibility of the high-performance thick-film electrode fabrication process consisting of coating-drying-flashlight surface activation (FLSA) is successfully demonstrated using a self-built R2R system integrated with a flashlight irradiation module.
AB - Herein, a straightforward route for fabricating highly loaded graphite composite anodes with enhanced electrochemical performance via ultrafast, scalable flashlight irradiation is presented. When a flashlight irradiates the surface of a thick graphite anode, instantaneous and non-equilibrium photo-thermochemical interactions occur between the flashlight and the constituent materials of the anode. As a result, a porous structure (through which the electrolyte easily penetrates), a large reaction site, improved conductivity, as well as phase transformation of active graphite material can be developed on the anode surface, which can facilitate ion and electron transport at the interface with the electrolyte. By fabricating a half-cell using this flash-activated, highly loaded graphite anode, it is found that the electrochemical performance, such as increases in the charge density, rate capability, and stability can be improved. Finally, the roll-to-roll (R2R) compatibility of the high-performance thick-film electrode fabrication process consisting of coating-drying-flashlight surface activation (FLSA) is successfully demonstrated using a self-built R2R system integrated with a flashlight irradiation module.
KW - carbonization
KW - flashlight activation
KW - graphite anode
KW - high energy density
KW - sp-sp hybridized carbon
UR - http://www.scopus.com/inward/record.url?scp=105003382549&partnerID=8YFLogxK
U2 - 10.1002/smtd.202401361
DO - 10.1002/smtd.202401361
M3 - Article
C2 - 39629499
AN - SCOPUS:105003382549
SN - 2366-9608
VL - 9
JO - Small Methods
JF - Small Methods
IS - 4
M1 - 2401361
ER -