TY - JOUR
T1 - H+-Induced 3D Porous Ti3C2Tx Foam Coupled with S Nanoparticles by the Drop Infusion Melting Method as a High Areal Loading Cathode for Li-S with Enhanced Performance
AU - Jiang, Wei
AU - Li, Wenlong
AU - Hu, Kexuan
AU - Liang, Yuqiang
AU - Wang, Zixian
AU - Sun, Li
AU - Yang, Jilong
AU - Zhao, Zhiyang
AU - Ren, Jian
AU - Pan, Limei
AU - Yang, Jian
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/11/7
Y1 - 2024/11/7
N2 - In this work, a Ti3C2Tx foam rich in -O functional groups was constructed by the H+-induced self-assembly and freeze-drying method, exhibiting a unique oriented three-dimensional porous structure. Subsequently, a S/Ti3C2Tx foam composite was prepared using the drop infusion melting method, in which S nanoparticles (30-100 nm) were uniformly anchored to the Ti3C2Tx surface through the Ti-S bond, serving as a cathode for lithium-sulfur batteries (LSB). The Ti3C2Tx foam exhibits a three-dimensional porous structure with a high specific surface area (42.8 m2/g), which promotes the uniform loading of sulfur (S), constructs fast migration channels for electrons and ions, and alleviates the volume expansion of S. Moreover, the Ti3C2Tx foam possesses a three-dimensional porous structure with abundant −O functional groups, which can provide both physical confinement and a chemical adsorption effect for polysulfides, effectively inhibiting the shuttle effect. Consequently, the S/Ti3C2Tx foam electrode with a 4.2 mg/cm2 S loading exhibits excellent rate performance (1165, 1033, 862, and 646 mAh/g at 0.1, 0.2, 0.5, and 1 C, respectively). Meanwhile, with a 1.8 mg/cm2 S loading, the electrode also exhibits good long-term cycling performance (723 mAh/g after 800 cycles, with a capacity retention of 64.9%).
AB - In this work, a Ti3C2Tx foam rich in -O functional groups was constructed by the H+-induced self-assembly and freeze-drying method, exhibiting a unique oriented three-dimensional porous structure. Subsequently, a S/Ti3C2Tx foam composite was prepared using the drop infusion melting method, in which S nanoparticles (30-100 nm) were uniformly anchored to the Ti3C2Tx surface through the Ti-S bond, serving as a cathode for lithium-sulfur batteries (LSB). The Ti3C2Tx foam exhibits a three-dimensional porous structure with a high specific surface area (42.8 m2/g), which promotes the uniform loading of sulfur (S), constructs fast migration channels for electrons and ions, and alleviates the volume expansion of S. Moreover, the Ti3C2Tx foam possesses a three-dimensional porous structure with abundant −O functional groups, which can provide both physical confinement and a chemical adsorption effect for polysulfides, effectively inhibiting the shuttle effect. Consequently, the S/Ti3C2Tx foam electrode with a 4.2 mg/cm2 S loading exhibits excellent rate performance (1165, 1033, 862, and 646 mAh/g at 0.1, 0.2, 0.5, and 1 C, respectively). Meanwhile, with a 1.8 mg/cm2 S loading, the electrode also exhibits good long-term cycling performance (723 mAh/g after 800 cycles, with a capacity retention of 64.9%).
UR - http://www.scopus.com/inward/record.url?scp=85206483598&partnerID=8YFLogxK
U2 - 10.1021/acs.energyfuels.4c03800
DO - 10.1021/acs.energyfuels.4c03800
M3 - 文章
AN - SCOPUS:85206483598
SN - 0887-0624
VL - 38
SP - 21544
EP - 21553
JO - Energy and Fuels
JF - Energy and Fuels
IS - 21
ER -