TY - JOUR
T1 - An in situ derived alloy phase stabilizes the phosphorus/carbon interface for high-performance lithium-ion battery anodes
AU - Liu, Shuya
AU - Zhang, Baoshan
AU - Ma, Kang
AU - Cao, Yu
AU - Fang, Siyu
AU - Zhang, Shaojie
AU - Liu, Jianghui
AU - Wang, Xiaoyi
AU - Zhao, Lili
AU - Chen, Renjie
AU - Du, Sihong
AU - Li, Liang
AU - Yang, Wensheng
AU - Fu, Hai
AU - Sun, Jie
N1 - Publisher Copyright:
© 2025 The Royal Society of Chemistry.
PY - 2025/4/29
Y1 - 2025/4/29
N2 - Phosphorus anodes are promising candidates for high-energy, fast-charging lithium-ion batteries, due to their impressive specific capacity of 2596 mA h g−1 and suitable lithiation potential of 0.7 V versus Li+/Li. However, their inherent poor conductivity and large volume change during charging and discharging processes pose significant challenges. Although various phosphorus-carbon composites offer a partial solution to these issues, the weak interfacial bonding between phosphorus and carbon hinders further enhancement. To tackle these issues, Sn4P3, which is derived in situ at the surface of phosphorus particles, has been employed as a potent interface-strengthening agent, significantly bolstering the bonding strength between phosphorus and carbon materials, yielding the product of Sn-P@C. During the lithiation and delithiation processes, the interface interaction is enhanced and the derived Li5SnP3 and Li4.4Sn exhibit exceptional ionic and electronic conductivity, drastically enhancing the electrochemical performance and reducing the volume expansion rate of the Sn-P@C anode. Additionally, Li4.4Sn can prominently reduce the delithiation energy barrier. Therefore, the Sn-P@C anode exhibits outstanding electrochemical properties, with an initial discharge capacity of up to 2258.4 mA h g−1 and a capacity retention of 92.2% after 140 cycles at a rate of 0.5C.
AB - Phosphorus anodes are promising candidates for high-energy, fast-charging lithium-ion batteries, due to their impressive specific capacity of 2596 mA h g−1 and suitable lithiation potential of 0.7 V versus Li+/Li. However, their inherent poor conductivity and large volume change during charging and discharging processes pose significant challenges. Although various phosphorus-carbon composites offer a partial solution to these issues, the weak interfacial bonding between phosphorus and carbon hinders further enhancement. To tackle these issues, Sn4P3, which is derived in situ at the surface of phosphorus particles, has been employed as a potent interface-strengthening agent, significantly bolstering the bonding strength between phosphorus and carbon materials, yielding the product of Sn-P@C. During the lithiation and delithiation processes, the interface interaction is enhanced and the derived Li5SnP3 and Li4.4Sn exhibit exceptional ionic and electronic conductivity, drastically enhancing the electrochemical performance and reducing the volume expansion rate of the Sn-P@C anode. Additionally, Li4.4Sn can prominently reduce the delithiation energy barrier. Therefore, the Sn-P@C anode exhibits outstanding electrochemical properties, with an initial discharge capacity of up to 2258.4 mA h g−1 and a capacity retention of 92.2% after 140 cycles at a rate of 0.5C.
UR - https://www.scopus.com/pages/publications/105005165968
U2 - 10.1039/d5ta01930c
DO - 10.1039/d5ta01930c
M3 - Article
AN - SCOPUS:105005165968
SN - 2050-7488
VL - 13
SP - 17411
EP - 17420
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 23
ER -