材料科学
石墨烯
制作
纳米技术
无定形固体
导电体
碳纳米管
电阻率和电导率
光电子学
兴奋剂
复合数
电导率
电极
无定形碳
纳米网
焦耳加热
氧化物
纳米复合材料
碳纤维
石墨
限制
色散(光学)
平版印刷术
超短脉冲
石墨烯纳米带
作者
Pengfei Chen,Zikai Li,Yifan Chang,Xinrui Yang,Shuaihua Jiang,Wei Qian,Xun Li,Hao Yuan,Wang Zhe,Zuhao Shi,Daping He
标识
DOI:10.1021/acsami.5c18748
摘要
Laser-induced graphene (LIG) technology has streamlined the fabrication of patterned graphene for electronics. However, the laser-induced ultrafast kinetics result in the formation of amorphous structures and high electrical resistivity, limiting its applicability in high-performance devices. Herein, we report a facile strategy of expanding interline spacing in LIG line-to-surface growth for constructing high-crystallinity-riveted surface architectures with significantly enhanced electrical conductivity. This approach enables scalable fabrication of highly conductive LIG (3,290 S m-1) under ambient conditions. Compared with doping and defect-healing strategies, this in situ optimization requires no additional reagents or high-temperature treatment and enables single-step patterned fabrication. Crucially, we first identify a heterogeneous structure along the vertical scanning direction in LIG lines, comprising defect-enriched, highly crystallized, and amorphous carbon phases. Combined experimental and theoretical analyses reveal that the structural gradient arises from the laser-pulse-induced Gaussian temperature field and far-from-equilibrium reaction dynamics. On this basis, we design an interline spacing exceeding the laser spot diameter to form high-crystallinity-riveted surface architectures, an interval conventionally considered unsuitable for producing high-quality LIG. The optimized LIG demonstrates substantially enhanced performance in electromagnetic shielding, Joule heating, and strain sensing, highlighting its potential for multifunctional, application-tailored devices.
科研通智能强力驱动
Strongly Powered by AbleSci AI