材料科学
碳纳米管
范德瓦尔斯力
热导率
石墨烯
纳米技术
电阻率和电导率
热的
光电子学
激光器
图层(电子)
复合材料
微尺度化学
石墨烯纳米带
制作
电导率
转化(遗传学)
压实
纳米管
热能
纳米
能量转换
碳纤维
热稳定性
储能
拓本
热电材料
薄膜
科技与社会
作者
Jianlin Li,Juyeon Seo,Peiyun Feng,Dongyun Seo,Jihyun Kim,Dina N. Oosthuizen,Jungwan Cho,Byungjin Cho,Ahmed Busnaina,Hyun Young Jung,Dongsik Kim,Yung Joon Jung
标识
DOI:10.1002/adfm.202511015
摘要
Abstract An unprecedented chemical‐free, one‐step method is presented to convert single‐walled carbon nanotube (SWCNT) networks into multilayer graphene‐rich films at an exceptionally low temperature (<120 °C). This transformation is driven by high‐rate, repetitive pressure (≈2.27 GPa) from laser‐induced shockwaves, which compact and restructure the SWCNTs network to a graphenic film. A key mechanism is based on the controlled unzipping of SWCNTs under intense shockwave compaction, enabling their transition into multilayer graphene with near‐equilibrium van der Waals layer spacing. The resulting graphene‐rich films exhibit a sevenfold increase in thermal conductivity (66.25 ± 7.16 W m −1 K −1 ) and a 2.6‐fold enhancement in electrical conductivity (0.18 ± 0.06 MS m −1 ), significantly improving the thermal and electrical transport properties. This scalable and energy‐efficient method uniquely enables interface engineering and continuous sp 2 structure reconstruction, opening new avenues for high‐performance electronics, thermal management, and energy storage applications.
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