TY - JOUR
T1 - A multisite super-crosslinked sulfur-heterocyclic polymer cathode for high-voltage and low-temperature aluminum–organic batteries
AU - Guo, Yuxi
AU - Guo, Ke
AU - Wang, Wei
AU - Huang, Zheng
AU - Wang, Yaxue
AU - Wang, Mingyong
AU - Zhu, Yanli
AU - Jiao, Shuqiang
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2026/1/1
Y1 - 2026/1/1
N2 - Simultaneously attaining high energy density and long cycling life remains a critical challenge for aluminum–organic batteries (AOBs) due to low operating voltage, limited active sites and unstable coordination structure of organic cathodes. Herein, we design a multisite super-crosslinked sulfur-heterocyclic polymer cathode. The electronegative sulfur heterocycles can significantly weaken the electron-donating effect, promoting the operating voltage to 2.0 V (average ∼1.7 V), which is a breakthrough for AOBs (<1.5 V for almost all AOBs). Tailoring the linking patterns of polymers to increase active sites can maximize redox activity to 12-electron-transfer, contributing to a high capacity of 150 mAh g−1. The designed organic cathode achieves 255 Wh kg−1 energy density, breaking the upper limit of conventional graphite cathodes (∼200 Wh kg−1). Notably, the weak coordination interaction between C–S+–C radicals and AlCl4− carriers ensures structural stability, enabling the battery’s excellent low-temperature durability, with almost 100% capacity retention after 12 000 cycles at −20°C.
AB - Simultaneously attaining high energy density and long cycling life remains a critical challenge for aluminum–organic batteries (AOBs) due to low operating voltage, limited active sites and unstable coordination structure of organic cathodes. Herein, we design a multisite super-crosslinked sulfur-heterocyclic polymer cathode. The electronegative sulfur heterocycles can significantly weaken the electron-donating effect, promoting the operating voltage to 2.0 V (average ∼1.7 V), which is a breakthrough for AOBs (<1.5 V for almost all AOBs). Tailoring the linking patterns of polymers to increase active sites can maximize redox activity to 12-electron-transfer, contributing to a high capacity of 150 mAh g−1. The designed organic cathode achieves 255 Wh kg−1 energy density, breaking the upper limit of conventional graphite cathodes (∼200 Wh kg−1). Notably, the weak coordination interaction between C–S+–C radicals and AlCl4− carriers ensures structural stability, enabling the battery’s excellent low-temperature durability, with almost 100% capacity retention after 12 000 cycles at −20°C.
KW - aluminum–ion batteries
KW - high operating voltage
KW - low-temperature durability
KW - molecular tailoring
KW - organic cathode materials
UR - https://www.scopus.com/pages/publications/105027271842
U2 - 10.1093/nsr/nwaf526
DO - 10.1093/nsr/nwaf526
M3 - Article
AN - SCOPUS:105027271842
SN - 2095-5138
VL - 13
JO - National Science Review
JF - National Science Review
IS - 1
M1 - nwaf526
ER -