Yue YueXiaoran YangKai YangKangyong LiZexin LiuFanfan WangRong ZhangJianyu HuangZhiqiang WangLifu ZhangGuoqing Xin
Flexible electronics toward high integration, miniaturization, and multifunctionality, leading to a dramatic increase in power density. However, the low thermal conductivity of flexible substrates impedes efficient heat dissipation and device performance improvement. In this work, we propose a template-assisted chemical conversion strategy for obtaining boron nitride nanotube (BNNT) films with high thermal conductivity and great flexibility. Aligned carbon nanotube (CNT) films have been adopted as templates; a low-temperature chemical conversion followed by a high-temperature annealing has been carried out to produce a highly ordered BNNT film. Benefiting from the high orientation order, the BNNT film exhibits an exceptional thermal conductivity of 45.5 W m-1 K-1 and presents excellent heat dissipation capability, much superior to the commonly used polyimide film. Furthermore, the BNNT film demonstrated excellent flexibility and high insulation resistance. The test of integration with film resistors demonstrated its potential as a thermally conductive substrate for electronics cooling. This work provides a solution for the effective thermal management of flexible electronics.
Yue Yue (3618713)Xiaoran Yang (2708374)Kai Yang (73590)Kangyong Li (13279316)Zexin Liu (8980460)Fanfan Wang (1669474)Rong Zhang (44942)Jian Huang (7250)Zhiqiang Wang (48987)Lifu Zhang (2181524)Guoqing Xin (1516117)
Zi-jie HuangRuiqing WangWan-jun JiangYulong LiuTing-yu ZhuDe‐xiang SunJing‐hui YangXiao‐dong QiYong Wang
PeiChi LiaoHaiyu HeHaichang GuoHongyu NiuLei KangHuifeng TianZhixin YaoZhenjiang LiYihan WangLina Yang ZhangGe YinU SasakiXueli QiRu LiWenxi LiYijie LuoXuanyu ZhangJunjie GuoLifen WangBai SongShu‐Lin BaiLei Liu
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