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Pressure-Driven Solid-State Radical Polymerization toward Carbon Nanothread

delete2025-09-01
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PRE
AI
G
Guangwei Che
X
Xingyu Tang
J
Jie Liu
P
Puyi Lang
Y
Yunfan Fei
X
Xin Yang
王雅杰 cover
王雅杰 (Yajie Wang)
D
Dexiang Gao
X
Xiaoge Wang
J
Jing Ju
A
Aijiao Guan
J
Junfeng Xiang
董校 (Xiao Dong)
T
Takanori Hattori
J
Jun Abe
郑海燕 (Haiyan Zheng)
李阔 (Kuo Li) *
DOI:10.1021/acs.nanolett.5c03977delete
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Abstract

Abstract

En 中文
Mechanochemical radical polymerization has unique advantages in the synthesis of polymers due to its reduced solvent consumption and adaptability of insoluble monomers. However, it suffers from the uncontrollable degradation of the formed polymers during reaction, and a new synthetic strategy with precise controllability needs to be developed. Here, by employing high static pressure up to 30 GPa, we found 1,3,5-trifluorobenzene undergoes radical polymerization by breaking the conjugated pi-bonds and forms a carbon nanothread with high selectivity (Polymer-I polymorph). Based on the crystal structure at the threshold pressure and the calculated energy barriers for the bonding pathway, we concluded that the benzene rings react via a radical 1,2-addition pathway. Our work highlights that high pressure is a robust method to initiate solid-state radical polymerization, even for very stable aromatics, and offers fresh insights for the synthesis of polymeric carbon-based materials with high selectivity.
Keywords:
Solid-State Radical Polymerization
Polymer-I CarbonNanothread
1,3,5-Trifluorobenzene
High Pressure

Journal

Nano Letters cover
Nano Letters
IF:
9.1
Papers:
2.7W
Citations:
16.5W

Organization

J
Japan Atomic Energy Agency
Scholars:
3.9K
Papers: 3.8K
Citations: 2.8K
P
Peking University
Scholars:
1.0W
Papers: 3.8K
Citations: 14.7W
I
institute of chemistry, cas
Scholars:
4.6K
Papers: 3.9K
Citations: 6
N
nankai university
Scholars:
4.7W
Papers: 3.2W
Citations: 74
C
chinese academy of sciences
Scholars:
56.5W
Papers: 44.9W
Citations: 704
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