TY - JOUR
T1 - MOF-derived 3D interconnected amorphous carbon nanowire networks for robust lithium storage
AU - Wang, Kai
AU - Sun, Jianming
AU - Yang, Haoqing
AU - Zhang, Yaohui
AU - Zhong, Xiaobin
AU - Song, Yuexian
AU - Hou, Fengxiao
AU - Zhang, Yangang
AU - Zhang, Zhiwen
AU - Wang, Han
AU - Zhu, Jian
AU - Sun, Hongtao
AU - Liang, Junfei
N1 - Funding Information:
This work is supported by the National Natural Science Foundation of China (Grant U1910208 , 21905239 , 22102157 and 12102290 ), National Natural Science Foundation of Shanxi Province ( 202103021223175 , 202103021223197 , 20210302124097 ), Applied Basic Research Programs of Shanxi Province in China (Grant No. 20210302123069 ), University-Industry Collaborative Education Program (No. 202102379004 ) and the Changsha Municipal Natural Science Foundation (Grant No. 43184 ).
Publisher Copyright:
© 2022 Elsevier Inc.
PY - 2023/1/15
Y1 - 2023/1/15
N2 - MOF-derived amorphous carbon-based materials has exhibited great potential for lithium-ion batteries (LIBs) with exceptional gravimetric capacity cycle stability. However, it is a great challenge to realize morphology control during the transformation process from MOF to carbon derivatives for obtaining electrode materials with superior rate performance and capacity retention rate under long cycle and high current density. Herein, through combining rapid heat and linker removing processes, a 3D interconnected amorphous carbon nanowire networks with developed hierarchical pores were prepared from sub-micron brick-like crystal Al-MOF. The 3D amorphous carbon with high specific surface area can provide substantial active sites for lithium storage, the interconnected nanowire networks can facilitate fast electron conduction, and the developed hierarchical pores can promote ion transport; therefore, the 3D amorphous carbon electrode exhibits superior rate performance and delivers an capacity as high as 400 mAh/g under the current density of 1.0 A/g even after 1000 cycles with an ultra-high-capacity retention rate of 101.8%, considerably outperforming other carbon derivatives derived from different types of MOF. The effective preparation method for morphology control and superior lithium storage performance represents a critical step toward capturing the full potential of MOF-derived carbon electrode materials in practical LIBs applications.
AB - MOF-derived amorphous carbon-based materials has exhibited great potential for lithium-ion batteries (LIBs) with exceptional gravimetric capacity cycle stability. However, it is a great challenge to realize morphology control during the transformation process from MOF to carbon derivatives for obtaining electrode materials with superior rate performance and capacity retention rate under long cycle and high current density. Herein, through combining rapid heat and linker removing processes, a 3D interconnected amorphous carbon nanowire networks with developed hierarchical pores were prepared from sub-micron brick-like crystal Al-MOF. The 3D amorphous carbon with high specific surface area can provide substantial active sites for lithium storage, the interconnected nanowire networks can facilitate fast electron conduction, and the developed hierarchical pores can promote ion transport; therefore, the 3D amorphous carbon electrode exhibits superior rate performance and delivers an capacity as high as 400 mAh/g under the current density of 1.0 A/g even after 1000 cycles with an ultra-high-capacity retention rate of 101.8%, considerably outperforming other carbon derivatives derived from different types of MOF. The effective preparation method for morphology control and superior lithium storage performance represents a critical step toward capturing the full potential of MOF-derived carbon electrode materials in practical LIBs applications.
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U2 - 10.1016/j.micromeso.2022.112388
DO - 10.1016/j.micromeso.2022.112388
M3 - Article
AN - SCOPUS:85143373093
SN - 1387-1811
VL - 348
JO - Microporous and Mesoporous Materials
JF - Microporous and Mesoporous Materials
M1 - 112388
ER -